BACKGROUND
Technical Field
[0001] The present disclosure relates to an imaging lens driving module and an electronic
device, more particularly to an imaging lens driving module applicable to an electronic
device.
Description of Related Art
[0002] With the development of semiconductor manufacturing technology, the performance of
image sensors has been improved, and the pixel size thereof has been scaled down.
Therefore, featuring high image quality becomes one of the indispensable features
of an optical system nowadays. Furthermore, due to the rapid changes in technology,
electronic devices equipped with optical systems are trending towards multi-functionality
for various applications, and therefore the functionality requirements for the optical
systems have been increasing.
[0003] In recent years, there is an increasing demand for electronic devices featuring light
and thin, but conventional optical systems are difficult to meet both the requirements
of high image quality and compactness. Conventional camera modules usually have functionalities
such as auto focus, optical image stabilization and optical zoom. However, in order
to achieve the above functionalities, the structure of the camera modules becomes
more complex and the size thereof also increases, and thus, the size of electronic
devices equipped with the camera modules also increases. Generally, in a manufacturing
process for optical systems, there are assembly errors between optical components,
and there is usually a problem of assembly warpage, thereby increasing defective rate
of the optical systems.
SUMMARY
[0004] According to one aspect of the present disclosure, an imaging lens driving module
includes a lens system, a lens holder assembly, a base, a rollable support assembly
and a driving mechanism. The lens system has a plurality of optical lens elements,
and the lens system has an optical axis passing through the optical lens elements.
The lens holder assembly includes a first lens holder and a second lens holder. The
first lens holder is for at least one of the optical lens elements to be disposed
therein, and the second lens holder is for at least another of the optical lens elements
to be disposed therein. The base includes a guiding groove assembly, and the guiding
groove assembly includes a first guiding groove and a second guiding groove. The first
guiding groove extends in a direction parallel to the optical axis and faces the first
lens holder and the second lens holder, the second guiding groove extends in the direction
parallel to the optical axis and is disposed opposite to the first guiding groove,
and the second guiding groove faces the first lens holder and the second lens holder.
The rollable support assembly is disposed between the lens holder assembly and the
base, such that the lens holder assembly has a degree of freedom of parallel movement
with respect to the base. The rollable support assembly includes at least one principal
rollable support element and at least one auxiliary rollable support element. The
principal rollable support element is disposed between the lens holder assembly and
the first guiding groove, and the auxiliary rollable support element is disposed between
the lens holder assembly and the second guiding groove. The driving mechanism is configured
to drive the lens holder assembly to move in the direction parallel to the optical
axis. The rollable support assembly is in physical contact with the lens holder assembly,
and the rollable support assembly is in physical contact with the base. The principal
rollable support element of the rollable support assembly allows the lens holder assembly
to move along the first guiding groove with respect to the base after the lens holder
assembly is driven by the driving mechanism. When a diameter of the principal rollable
support element in physical contact with the first lens holder is ΦD1, and a diameter
of the auxiliary rollable support element in physical contact with the first lens
holder is ΦD2, the following condition is satisfied: ΦD1 ≠ ΦD2.
[0005] According to another aspect of the present disclosure, an imaging lens driving module
includes a lens system, a lens holder assembly, a base, a rollable support assembly
and a driving mechanism. The lens system has a plurality of optical lens elements,
and the lens system has an optical axis passing through the optical lens elements.
The lens holder assembly includes a first lens holder and a second lens holder. The
first lens holder is for at least one of the optical lens elements to be disposed
therein, and the second lens holder is for at least another of the optical lens elements
to be disposed therein. The base includes a guiding groove assembly, and the guiding
groove assembly includes a first guiding groove, a second guiding groove and a third
guiding groove. The first guiding groove extends in a direction parallel to the optical
axis and faces the first lens holder and the second lens holder. The second guiding
groove and the third guiding groove extend in the direction parallel to the optical
axis. The second guiding groove faces the first lens holder, and the second guiding
groove does not face the second lens holder. The third guiding groove faces the second
lens holder, and the third guiding groove does not face the first lens holder. The
rollable support assembly is disposed between the lens holder assembly and the base,
such that the lens holder assembly has a degree of freedom of parallel movement with
respect to the base. The rollable support assembly includes at least one principal
rollable support element and at least one auxiliary rollable support element. The
principal rollable support element is disposed between the lens holder assembly and
the first guiding groove, and the auxiliary rollable support element is disposed between
the lens holder assembly and other guiding groove other than the first guiding groove.
The driving mechanism is configured to drive the lens holder assembly to move in the
direction parallel to the optical axis. The rollable support assembly is in physical
contact with the lens holder assembly, and the rollable support assembly is in physical
contact with the base. The principal rollable support element of the rollable support
assembly allows the lens holder assembly to move along the first guiding groove with
respect to the base after the lens holder assembly is driven by the driving mechanism.
When a diameter of the principal rollable support element in physical contact with
the first lens holder is ΦD1, and a diameter of the auxiliary rollable support element
in physical contact with the first lens holder is ΦD2, the following condition is
satisfied: ΦD1 ≠ ΦD2.
[0006] According to another aspect of the present disclosure, an imaging lens driving module
includes a lens system, a lens holder assembly, a base, at least two rollable support
assemblies and a driving mechanism. The lens system has a plurality of optical lens
elements, and the lens system has an optical axis passing through the optical lens
elements. The lens holder assembly includes a first lens holder and a second lens
holder. The first lens holder is for at least one of the optical lens elements to
be disposed therein, and the second lens holder is for at least another of the optical
lens elements to be disposed therein. The base includes at least two guiding groove
assemblies, and the at least two guiding groove assemblies includes a first guiding
groove assembly and a second guiding groove assembly. The first guiding groove assembly
faces the first lens holder, and the first guiding groove assembly includes a first
guiding groove and a second guiding groove. The first guiding groove and the second
guiding groove extend in a direction parallel to the optical axis, and the second
guiding groove and the first guiding groove are disposed opposite to each other. The
second guiding groove assembly faces the second lens holder, and the second guiding
groove assembly includes a third guiding groove and a fourth guiding groove. The third
guiding groove and the fourth guiding groove extend in the direction parallel to the
optical axis, and the fourth guiding groove and the third guiding groove are disposed
opposite to each other. The rollable support assemblies are disposed between the lens
holder assembly and the base, such that the lens holder assembly has a degree of freedom
of parallel movement with respect to the base. The rollable support assemblies includes
a first rollable support assembly and a second rollable support assembly. The first
rollable support assembly includes at least one first principal rollable support element
and at least one first auxiliary rollable support element. The first principal rollable
support element is disposed between the first lens holder and the first guiding groove,
and the first auxiliary rollable support element is disposed between the first lens
holder and the second guiding groove. The second rollable support assembly includes
at least one second principal rollable support element and at least one second auxiliary
rollable support element. The second principal rollable support element is disposed
between the second lens holder and the third guiding groove, and the second auxiliary
rollable support element is disposed between the second lens holder and the fourth
guiding groove. The driving mechanism is configured to drive the lens holder assembly
to move in the direction parallel to the optical axis. The rollable support assemblies
are in physical contact with the lens holder assembly, and the rollable support assemblies
are in physical contact with the base. The first principal rollable support element
allows the first lens holder to move along the first guiding groove with respect to
the base after the first lens holder is driven by the driving mechanism, and the second
principal rollable support element allows the second lens holder to move along the
third guiding groove with respect to the base after the second lens holder is driven
by the driving mechanism. When a diameter of the first principal rollable support
element in physical contact with the first lens holder is ΦD1, and a diameter of the
first auxiliary rollable support element in physical contact with the first lens holder
is ΦD2, the following condition is satisfied: ΦD1 ≠ ΦD2.
[0007] According to another aspect of the present disclosure, an imaging lens driving module
includes a lens system, a lens holder, a light-folding element, a base, a rollable
support assembly and a driving mechanism. The lens system has a plurality of optical
lens elements, and the lens system has an optical axis passing through the optical
lens elements. The lens holder is for at least one of the optical lens elements to
be disposed therein. The light-folding element is configured to fold an incident optical
trace towards at least one of the optical lens elements. The base includes a first
guiding groove and a second guiding groove. The first guiding groove extends in a
direction parallel to the optical axis and faces the lens holder. The second guiding
groove extends in the direction parallel to the optical axis and is disposed opposite
to the first guiding groove, and the second guiding groove faces the lens holder.
The rollable support assembly is disposed between the lens holder and the base, such
that the lens holder has a degree of freedom of parallel movement with respect to
the base. The rollable support assembly includes at least one principal rollable support
element and at least one auxiliary rollable support element. The principal rollable
support element is disposed between the lens holder and the first guiding groove,
and the auxiliary rollable support element is disposed between the lens holder and
the second guiding groove. The driving mechanism is configured to drive the lens holder
to move in the direction parallel to the optical axis. The rollable support assembly
is in physical contact with the lens holder, and the rollable support assembly is
in physical contact with the base. The principal rollable support element of the rollable
support assembly allows the lens holder to move along the first guiding groove with
respect to the base after the lens holder is driven by the driving mechanism. The
optical lens elements include at least one object-side optical lens element, and the
object-side optical lens element is located on an object side of the light-folding
element. The light-folding element has no relative motion with respect to the base,
and the object-side optical lens element has no relative motion with respect to the
base. When a diameter of the principal rollable support element in physical contact
with the lens holder is ΦD1, and a diameter of the auxiliary rollable support element
in physical contact with the lens holder is ΦD2, the following condition is satisfied:
ΦD1 ≠ ΦD2.
[0008] According to another aspect of the present disclosure, an electronic device includes
the aforementioned imaging lens driving module.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The disclosure can be better understood by reading the following detailed description
of the embodiments, with reference made to the accompanying drawings as follows:
Fig. 1 is a perspective view of an imaging lens driving module according to the 1st
embodiment of the present disclosure;
Fig. 2 is an exploded view of the imaging lens driving module in Fig. 1;
Fig. 3 is another exploded view of the imaging lens driving module in Fig. 1;
Fig. 4 is a perspective view of the imaging lens driving module in Fig. 1 without
a casing;
Fig. 5 is a top view of the imaging lens driving module in Fig. 4;
Fig. 6 is a cross-sectional view of the imaging lens driving module along line 6-6
in Fig. 5;
Fig. 7 is a cross-sectional view of the imaging lens driving module along line 7-7
in Fig. 5;
Fig. 8 is a perspective view of a base and a rollable support assembly of the imaging
lens driving module in Fig. 1;
Fig. 9 is a top view of the base and the rollable support assembly in Fig. 8;
Fig. 10 is a perspective view of an imaging lens driving module according to the 2nd
embodiment of the present disclosure;
Fig. 11 is an exploded view of the imaging lens driving module in Fig. 10;
Fig. 12 is another exploded view of the imaging lens driving module in Fig. 10;
Fig. 13 is a perspective view of the imaging lens driving module in Fig. 10 without
a casing;
Fig. 14 is a top view of the imaging lens driving module in Fig. 13;
Fig. 15 is a cross-sectional view of the imaging lens driving module along line 15-15
in Fig. 14;
Fig. 16 is a cross-sectional view of the imaging lens driving module along line 16-16
in Fig. 14;
Fig. 17 is a perspective view of a base and rollable support assemblies of the imaging
lens driving module in Fig. 10;
Fig. 18 is a top view of the base and the rollable support assemblies in Fig. 17;
Fig. 19 is a top view of a base and rollable support assemblies of the imaging lens
driving module in Fig. 10 according to another example of the present disclosure;
Fig. 20 is a top view of a base and rollable support assemblies of the imaging lens
driving module in Fig. 10 according to another example of the present disclosure;
Fig. 21 is a perspective view of an imaging lens driving module according to the 3rd
embodiment of the present disclosure;
Fig. 22 is an exploded view of the imaging lens driving module in Fig. 21;
Fig. 23 is another exploded view of the imaging lens driving module in Fig. 21;
Fig. 24 is a perspective view of the imaging lens driving module in Fig. 21 without
a casing;
Fig. 25 is a top view of the imaging lens driving module in Fig. 24;
Fig. 26 is a cross-sectional view of the imaging lens driving module along line 26-26
in Fig. 25;
Fig. 27 is a cross-sectional view of the imaging lens driving module along line 27-27
in Fig. 25;
Fig. 28 is a perspective view of a base and a rollable support assembly of the imaging
lens driving module in Fig. 21;
Fig. 29 is a top view of the base and the rollable support assembly in Fig. 28;
Fig. 30 is a perspective view of an imaging lens driving module according to the 4th
embodiment of the present disclosure;
Fig. 31 is an exploded view of the imaging lens driving module in Fig. 30;
Fig. 32 is another exploded view of the imaging lens driving module in Fig. 30;
Fig. 33 is a perspective view of the imaging lens driving module in Fig. 30 without
a flexible printed circuit board and driving coils;
Fig. 34 is a top view of the imaging lens driving module in Fig. 33;
Fig. 35 is a cross-sectional view of the imaging lens driving module along line 35-35
in Fig. 34;
Fig. 36 is a cross-sectional view of the imaging lens driving module along line 36-36
in Fig. 34;
Fig. 37 is a cross-sectional view of the imaging lens driving module along line 37-37
in Fig. 34;
Fig. 38 is a perspective view of a base, a rollable support assembly, buffering support
elements and a light-folding element of the imaging lens driving module in Fig. 30;
Fig. 39 is a top view of the base, the rollable support assembly, the buffering support
elements and the light-folding element in Fig. 38;
Fig. 40 is a perspective view of an imaging lens driving module according to the 5th
embodiment of the present disclosure;
Fig. 41 is an exploded view of the imaging lens driving module in Fig. 40;
Fig. 42 is another exploded view of the imaging lens driving module in Fig. 40;
Fig. 43 is a perspective view of the imaging lens driving module in Fig. 40 without
a casing;
Fig. 44 is a sectional view of the imaging lens driving module in Fig. 43;
Fig. 45 is a top view of the imaging lens driving module in Fig. 43;
Fig. 46 is a cross-sectional view of the imaging lens driving module along line 46-46
in Fig. 45;
Fig. 47 is a cross-sectional view of the imaging lens driving module along line 47-47
in Fig. 45;
Fig. 48 is a perspective view of a base, a rollable support assembly and some image-side
optical lens elements of the imaging lens driving module in Fig. 40;
Fig. 49 is a top view of the base and the rollable support assembly in Fig. 48;
Fig. 50 is a perspective view of an imaging lens driving module according to the 6th
embodiment of the present disclosure;
Fig. 51 is an exploded view of the imaging lens driving module in Fig. 50;
Fig. 52 is another exploded view of the imaging lens driving module in Fig. 50;
Fig. 53 is a perspective view of the imaging lens driving module in Fig. 50 without
a casing;
Fig. 54 is a top view of the imaging lens driving module in Fig. 53;
Fig. 55 is a cross-sectional view of the imaging lens driving module along line 55-55
in Fig. 54;
Fig. 56 is a cross-sectional view of the imaging lens driving module along line 56-56
in Fig. 54;
Fig. 57 is a perspective view of a base and a rollable support assembly of the imaging
lens driving module in Fig. 50;
Fig. 58 is a top view of the base and the rollable support assembly in Fig. 57;
Fig. 59 is one perspective view of an electronic device according to the 7th embodiment
of the present disclosure;
Fig. 60 is another perspective view of the electronic device in Fig. 59;
Fig. 61 is a block diagram of the electronic device in Fig. 59;
Fig. 62 shows an image captured by the electronic device in Fig. 59 with an equivalent
focal length ranging between 11 mm and 14 mm;
Fig. 63 shows an image captured by the electronic device in Fig. 59 with an equivalent
focal length ranging between 22 mm and 30 mm;
Fig. 64 shows an image captured by the electronic device in Fig. 59 with an equivalent
focal length ranging between 60 mm and 300 mm; and
Fig. 65 shows an image captured by the electronic device in Fig. 59 with an equivalent
focal length ranging between 400 mm and 600 mm.
DETAILED DESCRIPTION
[0010] In the following detailed description, for purposes of explanation, numerous specific
details are set forth in order to provide a thorough understanding of the disclosed
embodiments. It will be apparent, however, that one or more embodiments may be practiced
without these specific details. In other instances, well-known structures and devices
are schematically shown in order to simplify the drawing.
[0011] The present disclosure provides an imaging lens driving module. The imaging lens
driving module includes a lens system, a lens holder assembly, a base, a rollable
support assembly and a driving mechanism.
[0012] The lens system has a plurality of optical lens elements, and the lens system has
an optical axis passing through the optical lens elements.
[0013] The lens holder assembly includes a first lens holder and a second lens holder. The
first lens holder is for at least one of the optical lens elements to be disposed
therein, and the second lens holder is for at least another of the optical lens elements
to be disposed therein.
[0014] The base includes a guiding groove assembly, and the guiding groove assembly includes
a first guiding groove and a second guiding groove. The first guiding groove extends
in a direction parallel to the optical axis and faces the first lens holder and the
second lens holder. The second guiding groove extends in the direction parallel to
the optical axis and is disposed opposite to the first guiding groove, and the second
guiding groove faces the first lens holder and the second lens holder. Therefore,
the first lens holder and the second lens holder of the lens holder assembly share
the first guiding groove and the second guiding groove, such that the lens holder
assembly has a shared rail design.
[0015] The rollable support assembly is disposed between the lens holder assembly and the
base, such that the lens holder assembly has a degree of freedom of parallel movement
with respect to the base. The rollable support assembly includes at least one principal
rollable support element and at least one auxiliary rollable support element. The
principal rollable support element is disposed between the lens holder assembly and
the first guiding groove, and the auxiliary rollable support element is disposed between
the lens holder assembly and the second guiding groove. The rollable support assembly
is in physical contact with the lens holder assembly, and the rollable support assembly
is in physical contact with the base. The first guiding groove has two contact points
with the principal rollable support element so as to ensure straight movement of the
principal rollable support element in the direction parallel to the optical axis,
but the present disclosure is not limited thereto. Moreover, the second guiding groove
has a single contact point with the auxiliary rollable support element so as to compensate
for remaining assembly errors, but the present disclosure is not limited thereto.
It is noted that the above describes various contact manners between different principal
rollable support elements and the guiding grooves. In specific, the principal rollable
support element is configured to have two contact points with the first guiding groove,
such that the movement of the principal rollable support element is restricted in
the direction parallel to the optical axis. The auxiliary rollable support element
is configured to have a single contact point with the second guiding groove, such
that the auxiliary rollable support element is allowed to move in a direction perpendicular
to the optical axis in a small range, and thus, the auxiliary rollable support element
not only supports the lens holder assembly but also absorbs extra assembly errors.
[0016] The driving mechanism is configured to drive the lens holder assembly to move in
the direction parallel to the optical axis. Moreover, the principal rollable support
element of the rollable support assembly allows the lens holder assembly to move along
the first guiding groove with respect to the base after the lens holder assembly is
driven by the driving mechanism.
[0017] When a diameter of the principal rollable support element in physical contact with
the first lens holder is ΦD1, and a diameter of the auxiliary rollable support element
in physical contact with the first lens holder is ΦD2, the following condition is
satisfied: ΦD1 ≠ ΦD2. Therefore, since the diameters of the principal rollable support
element and the auxiliary rollable support element in physical contact with the same
lens holder are different from each other, it can be a foolproof mechanism during
the assembly process of the imaging lens driving module, thereby improving recognition
efficiency during the assembly process. Moreover, ΦD1 ≠ ΦD2 may be ΦD1 < ΦD2 or ΦD1
> ΦD2.
[0018] The number of the at least one principal rollable support element can be plural.
There can be at least two of the principal rollable support elements facing the first
lens holder, and a first buffering support element is disposed between the at least
two principal rollable support elements. Therefore, the first buffering support element
can reduce the rolling resistance between the principal rollable support elements
so as to reduce the driving power consumption of the imaging lens driving module.
[0019] The number of the at least one auxiliary rollable support element can be plural.
There can be at least two of the auxiliary rollable support elements facing the first
lens holder, and a second buffering support element is disposed between the at least
two auxiliary rollable support elements. Therefore, the second buffering support element
can reduce the rolling resistance between the auxiliary rollable support elements
so as to reduce the driving power consumption of the imaging lens driving module.
[0020] When the diameter of the principal rollable support element in physical contact with
the first lens holder is ΦD1, the diameter of the auxiliary rollable support element
in physical contact with the first lens holder is ΦD2, a diameter of the first buffering
support element is ΦD3, and a diameter of the second buffering support element is
ΦD4, the following conditions can be satisfied: ΦD3 < ΦD1; and ΦD4 < ΦD2. Therefore,
it is favorable for reducing the driving power consumption of the imaging lens driving
module. Moreover, the lens holder assembly is only in physical contact with the principal
rollable support element having the maximum diameter among the principal rollable
support elements facing theretoward and the auxiliary rollable support element having
the maximum diameter among the auxiliary rollable support elements facing theretoward.
[0021] When the number of the principal rollable support element is N1, and the number of
the auxiliary rollable support element is N2, the following condition can be satisfied:
N2 ≤ N1. Therefore, a proper number arrangement of the principal and auxiliary rollable
support elements is favorable for optimizing the driving efficiency of the imaging
lens driving module.
[0022] The imaging lens driving module can further include a light-folding element configured
to fold an incident optical trace towards at least one of the optical lens elements.
Therefore, the size of the imaging lens driving module provided with the light-folding
element can be reduced. Moreover, the light-folding element can be, for example, a
mirror or a prism, but the present disclosure is not limited thereto. Herein, incident
light coming from the object side of the lens system and not yet folded by the light-folding
element is referred as the incident optical trace.
[0023] The present disclosure provides another imaging lens driving module. The imaging
lens driving module includes a lens system, a lens holder assembly, a base, a rollable
support assembly and a driving mechanism.
[0024] The lens system has a plurality of optical lens elements, and the lens system has
an optical axis passing through the optical lens elements.
[0025] The lens holder assembly includes a first lens holder and a second lens holder. The
first lens holder is for at least one of the optical lens elements to be disposed
therein, and the second lens holder is for at least another of the optical lens elements
to be disposed therein.
[0026] The base includes a guiding groove assembly, and the guiding groove assembly includes
a first guiding groove, a second guiding groove and a third guiding groove. The first
guiding groove extends in a direction parallel to the optical axis and faces the first
lens holder and the second lens holder, the second guiding groove extends in the direction
parallel to the optical axis and only faces the first lens holder, and the third guiding
groove extends in the direction parallel to the optical axis and only faces the second
lens holder. Specifically, the second guiding groove "only facing" the first lens
holder indicates that the second guiding groove does not face the second lens holder;
similarly, the third guiding groove "only facing" the second lens holder indicates
that the third guiding groove does not face the first lens holder. Therefore, the
first lens holder and the second lens holder of the lens holder assembly share the
first guiding groove, such that the lens holder assembly has a partially shared rail
design.
[0027] The rollable support assembly is disposed between the lens holder assembly and the
base, such that the lens holder assembly has a degree of freedom of parallel movement
with respect to the base. The rollable support assembly includes at least one principal
rollable support element and at least one auxiliary rollable support element. The
principal rollable support element is disposed between the lens holder assembly and
the first guiding groove, and the auxiliary rollable support element is disposed between
the lens holder assembly and other guiding groove other than the first guiding groove.
The rollable support assembly is in physical contact with the lens holder assembly,
and the rollable support assembly is in physical contact with the base. The first
guiding groove has two contact points with the principal rollable support element
so as to ensure straight movement of the principal rollable support element in the
direction parallel to the optical axis, but the present disclosure is not limited
thereto. Moreover, each guiding groove other than the first guiding groove has a single
contact point with the auxiliary rollable support element so as to compensate for
remaining assembly errors, but the present disclosure is not limited thereto. It is
noted that the above describes various contact manners between different principal
rollable support elements and the guiding grooves. In specific, the principal rollable
support element is configured to have two contact points with the first guiding groove,
such that the movement of the principal rollable support element is restricted in
the direction parallel to the optical axis. The auxiliary rollable support element
is configured to have a single contact point with other guiding groove other than
the first guiding groove, such that the auxiliary rollable support element is allowed
to move in a direction perpendicular to the optical axis in a small range, and thus,
the auxiliary rollable support element not only supports the lens holder assembly
but also absorbs extra assembly errors.
[0028] The driving mechanism is configured to drive the lens holder assembly to move in
the direction parallel to the optical axis. Moreover, the principal rollable support
element of the rollable support assembly allows the lens holder assembly to move along
the first guiding groove with respect to the base after the lens holder assembly is
driven by the driving mechanism.
[0029] When a diameter of the principal rollable support element in physical contact with
the first lens holder is ΦD1, and a diameter of the auxiliary rollable support element
in physical contact with the first lens holder is ΦD2, the following condition is
satisfied: ΦD1 ≠ ΦD2. Therefore, since the diameters of the principal rollable support
element and the auxiliary rollable support element in physical contact with the same
lens holder are different from each other, it can be a foolproof mechanism during
the assembly process of the imaging lens driving module, thereby improving recognition
efficiency during the assembly process. Moreover, ΦD1 ≠ ΦD2 may be ΦD1 < ΦD2 or ΦD1
> ΦD2.
[0030] The first guiding groove can have same cross-sectional areas in the direction parallel
to the optical axis. Therefore, it is favorable for increasing the mold design flexibility
so as to meet requirements of guiding grooves for various driving manners.
[0031] The first guiding groove can have different cross-sectional areas in the direction
parallel to the optical axis. Therefore, it is favorable for providing feasibility
of a blocking mechanism and the base to be one-piece formed, thereby improving manufacturing
efficiency.
[0032] The first guiding groove can have a gradually expanding surface. Therefore, it is
favorable for providing a configuration where the blocking mechanism provides better
blocking effect. In addition, said gradually expanding surface may gradually expand
from the object side towards the image side of the lens system in the direction parallel
to the optical axis, or from the image side towards the object side of the lens system
in the direction parallel to the optical axis, and the present disclosure is not limited
thereto.
[0033] The number of the at least one principal rollable support element can be plural.
When a minimum width of the gradually expanding surface is W, and a maximum diameter
among the principal rollable support elements is ΦD5, the following condition can
be satisfied: W < ΦD5. Therefore, it is favorable for the gradually expanding surface
to have the blocking mechanism, and the blocking mechanism provides better blocking
effect when the above condition range is satisfied, thereby restricting the movement
range of the principal rollable support element in the direction parallel to the optical
axis. Said maximum diameter among the principal rollable support elements indicates
the diameter of the principal rollable support element having the maximum diameter
among all the principal rollable support elements.
[0034] The present disclosure provides another imaging lens driving module. The imaging
lens driving module includes a lens system, a lens holder assembly, a base, at least
two rollable support assemblies and a driving mechanism.
[0035] The lens system has a plurality of optical lens elements, and the lens system has
an optical axis passing through the optical lens elements.
[0036] The lens holder assembly includes a first lens holder and a second lens holder. The
first lens holder is for at least one of the optical lens elements to be disposed
therein, and the second lens holder is for at least another of the optical lens elements
to be disposed therein.
[0037] The base includes at least two guiding groove assemblies, and the at least two guiding
groove assemblies includes a first guiding groove assembly and a second guiding groove
assembly. The first guiding groove assembly faces the first lens holder, and the first
guiding groove assembly includes a first guiding groove and a second guiding groove.
The first guiding groove and the second guiding groove extend in a direction parallel
to the optical axis, and the second guiding groove and the first guiding groove are
disposed opposite to each other. The second guiding groove assembly faces the second
lens holder, and the second guiding groove assembly includes a third guiding groove
and a fourth guiding groove. The third guiding groove and the fourth guiding groove
extend in the direction parallel to the optical axis, and the fourth guiding groove
and the third guiding groove are disposed opposite to each other.
[0038] The rollable support assemblies are disposed between the lens holder assembly and
the base, such that the lens holder assembly has a degree of freedom of parallel movement
with respect to the base. The rollable support assemblies include a first rollable
support assembly and a second rollable support assembly. The first rollable support
assembly includes at least one first principal rollable support element and at least
one first auxiliary rollable support element. The first principal rollable support
element is disposed between the first lens holder and the first guiding groove, and
the first auxiliary rollable support element is disposed between the first lens holder
and the second guiding groove. The second rollable support assembly includes at least
one second principal rollable support element and at least one second auxiliary rollable
support element. The second principal rollable support element is disposed between
the second lens holder and the third guiding groove, and the second auxiliary rollable
support element is disposed between the second lens holder and the fourth guiding
groove. In addition, the rollable support assemblies are in physical contact with
the lens holder assembly, and the rollable support assemblies are in physical contact
with the base. Moreover, each of the first guiding groove and the third guiding groove
has two contact points with the principal rollable support element so as to ensure
straight movement of the principal rollable support element in the direction parallel
to the optical axis, but the present disclosure is not limited thereto. Moreover,
each guiding groove other than the first guiding groove and the third guiding groove
has a single contact point with the auxiliary rollable support element so as to compensate
for remaining assembly errors, but the present disclosure is not limited thereto.
It is noted that the above describes various contact manners between different principal
rollable support elements and the guiding grooves. In specific, the principal rollable
support element is configured to have two contact points with the first guiding groove
or the third guiding groove, such that the movement of the principal rollable support
element is restricted in the direction parallel to the optical axis. The auxiliary
rollable support element is configured to have a single contact point with other guiding
groove other than the first guiding groove and the third guiding groove, such that
the auxiliary rollable support element is allowed to move in a direction perpendicular
to the optical axis in a small range, and thus, the auxiliary rollable support element
not only supports the lens holder assembly but also absorbs extra assembly errors.
Moreover, each of the second guiding groove and the fourth guiding groove has a single
contact point with the auxiliary rollable support element so as to absorb assembly
warpage generated during the assembly process, thereby improving yield rate.
[0039] The driving mechanism is configured to drive the lens holder assembly to move in
the direction parallel to the optical axis. Moreover, the first principal rollable
support element allows the first lens holder to move along the first guiding groove
with respect to the base after the first lens holder is driven by the driving mechanism,
and the second principal rollable support element allows the second lens holder to
move along the third guiding groove with respect to the base after the second lens
holder is driven by the driving mechanism.
[0040] When a diameter of the first principal rollable support element in physical contact
with the first lens holder is ΦD1, and a diameter of the first auxiliary rollable
support element in physical contact with the first lens holder is ΦD2, the following
condition is satisfied: ΦD1 ≠ ΦD2. Therefore, since the diameters of the principal
rollable support element and the auxiliary rollable support element in physical contact
with the same lens holder are different from each other, it can be a foolproof mechanism
during the assembly process of the imaging lens driving module, thereby improving
recognition efficiency during the assembly process. Moreover, ΦD1 ≠ ΦD2 may be ΦD1
< ΦD2 or ΦD1 > ΦD2.
[0041] The first guiding groove assembly and the second guiding groove assembly can overlap
each other in the direction perpendicular to the optical axis. Therefore, it is favorable
for increasing the mold design flexibility so as to meet requirements of guiding grooves
for various driving manners. Said two elements overlapping each other indicates that
the two elements partially overlap each other or completely overlap each other.
[0042] The first guiding groove assembly and the second guiding groove assembly may not
overlap each other in the direction parallel to the optical axis. Therefore, it is
favorable for increasing the mold design flexibility so as to meet requirements of
guiding grooves for various driving manners.
[0043] The first guiding groove assembly and the second guiding groove assembly may not
overlap each other in the direction perpendicular to the optical axis. Therefore,
it is favorable for increasing the mold design flexibility so as to meet requirements
of guiding grooves for various driving manners.
[0044] The first guiding groove assembly and the second guiding groove assembly can overlap
each other in the direction parallel to the optical axis. Therefore, it is favorable
for increasing the mold design flexibility so as to meet requirements of guiding grooves
for various driving manners. Said two elements overlapping each other indicates that
the two elements partially overlap each other or completely overlap each other.
[0045] The present disclosure provides another imaging lens driving module. The imaging
lens driving module includes a lens system, a lens holder, a light-folding element,
a base, a rollable support assembly and a driving mechanism.
[0046] The lens system has a plurality of optical lens elements, and the lens system has
an optical axis passing through the optical lens elements.
[0047] The lens holder is for at least one of the optical lens elements to be disposed therein.
The light-folding element is configured to fold an incident optical trace towards
at least one of the optical lens elements. Moreover, the optical lens elements include
at least one object-side optical lens element located on the object side of the light-folding
element. Herein, incident light coming from the object side of the lens system and
not yet folded by the light-folding element is referred as the incident optical trace.
[0048] The base includes a first guiding groove and a second guiding groove. The first guiding
groove extends in a direction parallel to the optical axis and faces the lens holder.
The second guiding groove extends in the direction parallel to the optical axis and
is disposed opposite to the first guiding groove, and the second guiding groove faces
the lens holder. In addition, the light-folding element has no relative motion with
respect to the base, and the object-side optical lens element has no relative motion
with respect to the base.
[0049] The rollable support assembly is disposed between the lens holder and the base, such
that the lens holder has a degree of freedom of parallel movement with respect to
the base. The rollable support assembly includes at least one principal rollable support
element and at least one auxiliary rollable support element. The principal rollable
support element is disposed between the lens holder and the first guiding groove,
and the auxiliary rollable support element is disposed between the lens holder and
the second guiding groove. In addition, the rollable support assembly is in physical
contact with the lens holder, and the rollable support assembly is in physical contact
with the base. Moreover, the first guiding groove has two contact points with the
principal rollable support element so as to ensure straight movement of the principal
rollable support element in the direction parallel to the optical axis, but the present
disclosure is not limited thereto. Moreover, the second guiding groove has a single
contact point with the auxiliary rollable support element so as to compensate for
remaining assembly errors and absorb assembly warpage generated during the assembly
process, thereby improving yield rate, but the present disclosure is not limited thereto.
It is noted that the above describes various contact manners between different principal
rollable support elements and the guiding grooves. In specific, the principal rollable
support element is configured to have two contact points with the first guiding groove,
such that the movement of the principal rollable support element is restricted in
the direction parallel to the optical axis. The auxiliary rollable support element
is configured to have a single contact point with the second guiding groove, such
that the auxiliary rollable support element is allowed to move in a direction perpendicular
to the optical axis in a small range, and thus, the auxiliary rollable support element
not only supports the lens holder assembly but also absorbs extra assembly errors.
[0050] The driving mechanism is configured to drive the lens holder to move in the direction
parallel to the optical axis. Moreover, the principal rollable support element of
the rollable support assembly allows the lens holder to move along the first guiding
groove with respect to the base after the lens holder is driven by the driving mechanism.
[0051] When a diameter of the principal rollable support element in physical contact with
the lens holder is ΦD1, and a diameter of the auxiliary rollable support element in
physical contact with lens holder is ΦD2, the following condition is satisfied: ΦD1
≠ ΦD2. Therefore, since the diameters of the principal rollable support element and
the auxiliary rollable support element in physical contact with the same lens holder
are different from each other, it can be a foolproof mechanism during the assembly
process of the imaging lens driving module, thereby improving recognition efficiency
during the assembly process. Moreover, ΦD1 ≠ ΦD2 may be ΦD1 < ΦD2 or ΦD1 > ΦD2.
[0052] The base can further include a lens holder structure for at least another of the
optical lens elements to be disposed therein. Therefore, it is favorable for increasing
the optical design flexibility so as to meet optical requirements of higher product
specifications.
[0053] The optical lens elements disposed in the lens holder structure of the base can have
no relative motion with respect to the base. Therefore, the optical lens elements
can be installed in predetermined positions more easily so as to improve image quality.
Furthermore, only the optical lens element(s) disposed in the lens holder among all
optical lens elements can have a relative motion with respect to the base.
[0054] The light-folding element can include an optical effective region, and the incident
optical trace passes through the optical effective region. Therefore, it is favorable
for integrating functions of light folding and refractive power into one light-folding
element so as to reduce manufacturing costs.
[0055] After the light-folding element converges the incident optical trace via the optical
effective region, the light-folding element folds the incident optical trace towards
at least one of the optical lens elements. Therefore, the total track length of the
imaging lens driving module provided with the light-folding element along the direction
parallel to the optical axis can be reduced, thereby achieving compactness.
[0056] The light-folding element can include a reduction portion, and the reduction portion
is reduced from the periphery of the light-folding element towards the center of the
light-folding element. Therefore, it is favorable for providing a configuration having
better space utilization arrangement so as to reduce the size of the imaging lens
driving module.
[0057] The object-side optical lens element has a central axis, and the object-side optical
lens element can have an outer peripheral reduction structure reduced in a straight-line
direction perpendicular to the central axis. Therefore, it is favorable for providing
a configuration having better space utilization arrangement so as to reduce the size
of the imaging lens driving module.
[0058] The present disclosure provides an electronic device, which includes one of the aforementioned
imaging lens driving modules.
[0059] According to the present disclosure, the aforementioned features and conditions can
be utilized in numerous combinations so as to achieve corresponding effects.
[0060] According to the above description of the present disclosure, the following specific
embodiments are provided for further explanation.
1st Embodiment
[0061] Please refer to Fig. 1 to Fig. 9. Fig. 1 is a perspective view of an imaging lens
driving module according to the 1st embodiment of the present disclosure, Fig. 2 is
an exploded view of the imaging lens driving module in Fig. 1, Fig. 3 is another exploded
view of the imaging lens driving module in Fig. 1, Fig. 4 is a perspective view of
the imaging lens driving module in Fig. 1 without a casing, Fig. 5 is a top view of
the imaging lens driving module in Fig. 4, Fig. 6 is a cross-sectional view of the
imaging lens driving module along line 6-6 in Fig. 5, Fig. 7 is a cross-sectional
view of the imaging lens driving module along line 7-7 in Fig. 5, Fig. 8 is a perspective
view of a base and a rollable support assembly of the imaging lens driving module
in Fig. 1, and Fig. 9 is a top view of the base and the rollable support assembly
in Fig. 8.
[0062] The imaging lens driving module 1 includes a casing 10, a lens system 11, a lens
holder assembly 12, a base 13, a rollable support assembly 14 and a driving mechanism
15. The casing 10 is disposed on the base 13, and the casing 10 and base 13 together
form an accommodation space for the lens holder assembly 12 to be slidably disposed
therein. The lens system 11 has a plurality of optical lens elements LE, and the lens
system 11 has an optical axis OA passing through the optical lens elements LE.
[0063] The lens holder assembly 12 includes, in order from the object side to the image
side, a first lens holder 121 and a second lens holder 122. The first lens holder
121 is for some of the optical lens elements LE to be disposed therein, and the second
lens holder 122 is for the other optical lens elements LE to be disposed therein.
Moreover, each lens holder can accommodate one or more optical lens elements, and
the present disclosure is not limited thereto.
[0064] The base 13 includes a guiding groove assembly 130, and the guiding groove assembly
130 includes a first guiding groove 131, a second guiding groove 132 and a third guiding
groove 133. The first guiding groove 131 extends in a direction parallel to the optical
axis OA and faces the first lens holder 121 and the second lens holder 122. The second
guiding groove 132 extends in the direction parallel to the optical axis OA and only
faces the first lens holder 121, and the third guiding groove 133 extends in the direction
parallel to the optical axis OA and only faces the second lens holder 122. In specific,
the first guiding groove 131 extends under the first lens holder 121 and the second
lens holder 122, the second guiding groove 132 does not extend under the second lens
holder 122 and thus does not face the second lens holder 122, and the third guiding
groove 133 does not extend under the first lens holder 121 and thus does not face
the first lens holder 121. In this embodiment, the first lens holder 121 and the second
lens holder 122 of the lens holder assembly 12 share the first guiding groove 131,
such that the lens holder assembly 12 has a partially shared rail design.
[0065] The rollable support assembly 14 is disposed between the lens holder assembly 12
and the base 13, and the rollable support assembly 14 is in physical contact with
the lens holder assembly 12 and the base 13, such that the lens holder assembly 12
has a degree of freedom of parallel movement with respect to the base 13. The rollable
support assembly 14 includes four principal rollable support elements 141 and four
auxiliary rollable support elements 142. Two of the principal rollable support elements
141 are disposed between the first lens holder 121 and the first guiding groove 131,
and the other two of the principal rollable support elements 141 are disposed between
the second lens holder 122 and the first guiding groove 131. Two of the auxiliary
rollable support elements 142 are disposed between the first lens holder 121 and the
second guiding groove 132, and the other two of the auxiliary rollable support elements
142 are disposed between the second lens holder 122 and the third guiding groove 133.
In this embodiment, the principal rollable support elements 141 and the auxiliary
rollable support elements 142 are rigid balls.
[0066] As shown in Fig. 6, the first guiding groove 131 has two contact points with one
principal rollable support element 141 so as to ensure straight movement of the principal
rollable support element 141 in the direction parallel to the optical axis. In addition,
each of the second guiding groove 132 and the third guiding groove 133 has a single
contact point with one auxiliary rollable support element 142 so as to compensate
for remaining assembly errors.
[0067] As shown in Fig. 8 and Fig. 9, the first guiding groove 131 has different cross-sectional
areas in the direction parallel to the optical axis OA, such that the first guiding
groove 131 forms a blocking mechanism at a portion thereof having a relatively small
cross-sectional area so as to block the principal rollable support element 141, and
therefore provides feasibility of the blocking mechanism and the base 13 to be one-piece
formed. In addition, the first guiding groove 131 has a gradually expanding surface
GWS, and the gradually expanding surface GWS gradually expands from the object side
to the image side of the lens system 11 in the direction parallel to the optical axis
OA so as to provide a configuration where the blocking mechanism provides better blocking
effect.
[0068] The driving mechanism 15 includes a flexible printed circuit board 150, a plurality
of driving magnets 151 and a plurality of driving coils 152. The flexible printed
circuit board 150 is attached to the base 13, the driving magnets 151 are disposed
on two opposite sides of the lens holder assembly 12, and the driving coils 152 are
disposed on the flexible printed circuit board 150 and respectively correspond to
the driving magnets 151. The driving mechanism 15 provides a driving force generated
by the driving magnets 151 and the driving coils 152 to drive the lens holder assembly
12 to move, and with the collaboration of the principal rollable support elements
141 of the rollable support assembly 14, the lens holder assembly 12 is movable along
the first guiding groove 131 (i.e., in the direction parallel to the optical axis
OA) with respect to the base 13 after being driven by the driving mechanism 15. Moreover,
each of the first lens holder 121 and the second lens holder 122 may have a relative
motion with respect to each other.
[0069] When a diameter of the principal rollable support element 141 in physical contact
with the first lens holder 121 is ΦD1, and a diameter of the auxiliary rollable support
element 142 in physical contact with the first lens holder 121 is ΦD2, the following
condition is satisfied: ΦD1 < ΦD2. Therefore, since the diameters of the principal
rollable support element and the auxiliary rollable support element in physical contact
with the same lens holder are different from each other, it can be a foolproof mechanism
during the assembly process of the imaging lens driving module, thereby improving
recognition efficiency during the assembly process. In this embodiment, both the diameters
of the two principal rollable support elements 141 located between the first lens
holder 121 and the first guiding groove 131 can be ΦD1, and the two principal rollable
support elements 141 are in physical contact with the first lens holder 121; alternatively,
due to manufacturing errors, there may be only one of the two principal rollable support
elements 141 located between the first lens holder 121 and the first guiding groove
131 having a diameter being ΦD1 and in physical contact with the first lens holder
121, while the other principal rollable support element 141 has a diameter smaller
than ΦD1 and is not in physical contact with the first lens holder 121. Similarly,
both the diameters of the two auxiliary rollable support elements 142 located between
the first lens holder 121 and the second guiding groove 132 can be ΦD2, and the two
auxiliary rollable support elements 142 are in physical contact with the first lens
holder 121; alternatively, due to manufacturing errors, there may be only one of the
two auxiliary rollable support elements 142 located between the first lens holder
121 and the second guiding groove 132 having a diameter being ΦD2 and in physical
contact with the first lens holder 121, while the other auxiliary rollable support
element 142 has a diameter smaller than ΦD2 and is not in physical contact with the
first lens holder 121.
[0070] When a minimum width of the gradually expanding surface GWS is W, and a diameter
of the principal rollable support element 141 having the maximum diameter among the
principal rollable support elements 141 is ΦD5, the following condition is satisfied:
W < ΦD5. Therefore, it is favorable for the gradually expanding surface GWS to have
the blocking mechanism, and the blocking mechanism provides better blocking effect
when the above condition range is satisfied, thereby restricting the movement range
of the principal rollable support elements 141 in the direction parallel to the optical
axis OA. In this embodiment, both the diameters of the two principal rollable support
elements 141 located between the second lens holder 122 and the first guiding groove
131 can be ΦD5, and the two principal rollable support elements 141 are in physical
contact with the second lens holder 122; alternatively, due to manufacturing errors,
there may be only one of the two principal rollable support elements 141 located between
the second lens holder 122 and the first guiding groove 131 having a diameter being
Φ D5 and in physical contact with the second lens holder 122, while the other principal
rollable support element 141 has a diameter smaller than ΦD5 and is not in physical
contact with the second lens holder 122.
[0071] When the number of the principal rollable support elements 141 is N1, and the number
of the auxiliary rollable support elements 142 is N2, the following condition is satisfied:
N2 = N1. Therefore, a proper number arrangement of the principal rollable support
elements 141 and the auxiliary rollable support elements 142 is favorable for optimizing
the driving efficiency of the imaging lens driving module 1. In this embodiment, the
number (N1) of the principal rollable support elements 141 is four, and also, the
number (N2) of the auxiliary rollable support elements 142 is four.
2nd Embodiment
[0072] Please refer to Fig. 10 to Fig. 18. Fig. 10 is a perspective view of an imaging lens
driving module according to the 2nd embodiment of the present disclosure, Fig. 11
is an exploded view of the imaging lens driving module in Fig. 10, Fig. 12 is another
exploded view of the imaging lens driving module in Fig. 10, Fig. 13 is a perspective
view of the imaging lens driving module in Fig. 10 without a casing, Fig. 14 is a
top view of the imaging lens driving module in Fig. 13, Fig. 15 is a cross-sectional
view of the imaging lens driving module along line 15-15 in Fig. 14, Fig. 16 is a
cross-sectional view of the imaging lens driving module along line 16-16 in Fig. 14,
Fig. 17 is a perspective view of a base and rollable support assemblies of the imaging
lens driving module in Fig. 10, and Fig. 18 is a top view of the base and the rollable
support assemblies in Fig. 17.
[0073] The imaging lens driving module 1b includes a casing 10b, a lens system 11b, a lens
holder assembly 12b, a base 13b, two rollable support assemblies 14b and 24b, and
a driving mechanism 15b. The casing 10b is disposed on the base 13b, and the casing
10b and the base 13b together form an accommodation space for the lens holder assembly
12b to be slidably disposed therein. The lens system 11b has a plurality of optical
lens elements LE, and the lens system 11b has an optical axis OA passing through the
optical lens elements LE.
[0074] The lens holder assembly 12b includes, in order from the object side to the image
side, a first lens holder 121b and a second lens holder 122b. The first lens holder
121b is for some of the optical lens elements LE to be disposed therein, and the second
lens holder 122b is for the other optical lens elements LE to be disposed therein.
[0075] The base 13b includes two guiding groove assemblies 130b and 230b which are a first
guiding groove assembly 130b and a second guiding groove assembly 230b. The first
guiding groove assembly 130b faces the first lens holder 121b, and the first guiding
groove assembly 130b includes a first guiding groove 131b and a second guiding groove
132b. The first guiding groove 131b extends in a direction parallel to the optical
axis OA, and the second guiding groove 132b extends in the direction parallel to the
optical axis OA and is disposed opposite to the first guiding groove 131b. The second
guiding groove assembly 230b faces the second lens holder 122b, and the second guiding
groove assembly 230b includes a third guiding groove 231b and a fourth guiding groove
232b. The third guiding groove 231b extends in the direction parallel to the optical
axis OA, and the fourth guiding groove 232b extends in the direction parallel to the
optical axis OA and is disposed opposite to the third guiding groove 231b.
[0076] The rollable support assemblies 14b and 24b are disposed between the lens holder
assembly 12b and the base 13b, and the rollable support assemblies 14b and 24b are
in physical contact with the lens holder assembly 12b and the base 13b, such that
the lens holder assembly 12b has a degree of freedom of parallel movement with respect
to the base 13b. The rollable support assemblies 14b and 24b are respectively a first
rollable support assembly 14b and a second rollable support assembly 24b. The first
rollable support assembly 14b includes two first principal rollable support elements
141b and two first auxiliary rollable support elements 142b. The first principal rollable
support elements 141b are disposed between the first lens holder 121b and the first
guiding groove 131b, and the first auxiliary rollable support elements 142b are disposed
between the first lens holder 121b and the second guiding groove 132b. The second
rollable support assembly 24b includes two second principal rollable support elements
241b and two second auxiliary rollable support elements 242b. The second principal
rollable support elements 241b are disposed between the second lens holder 122b and
the third guiding groove 231b, and the second auxiliary rollable support elements
242b are disposed between the second lens holder 122b and the fourth guiding groove
232b.
[0077] In this embodiment, the first guiding groove 131b has two contact points with one
first principal rollable support element 141b, and the third guiding groove 231b has
two contact points with one second principal rollable support element 241b (as shown
in Fig. 15) so as to ensure straight movement of the principal rollable support element
141b in the direction parallel to the optical axis. In addition, the second guiding
groove 132b has a single contact point with one first auxiliary rollable support element
142b, and the fourth guiding groove 232b has a single contact point with one second
auxiliary rollable support element 242b (as shown in Fig. 15) so as to compensate
for remaining assembly errors and absorb assembly warpage generated during the assembly
process, thereby improving yield rate.
[0078] The driving mechanism 15b includes a flexible printed circuit board 150b, a plurality
of driving magnets 151b and a plurality of driving coils 152b. The flexible printed
circuit board 150b is attached to the base 13b, the driving magnets 151b are disposed
on two opposite sides of the lens holder assembly 12b, and the driving coils 152b
are disposed on the flexible printed circuit board 150b and respectively correspond
to the driving magnets 151b. The driving mechanism 15b provides a driving force generated
by the driving magnets 151b and the driving coils 152b to drive the lens holder assembly
12b to move, and with the collaboration of the principal rollable support elements
141b and 241b of the rollable support assemblies 14b and 24b, the lens holder assembly
12b is movable along the first guiding groove 131b and the third guiding groove 231b
(i.e., in the direction parallel to the optical axis OA) with respect to the base
13b after being driven by the driving mechanism 15b. Moreover, each of the first lens
holder 121b and the second lens holder 122b may have a relative motion with respect
to each other.
[0079] When a diameter of the first principal rollable support element 141b in physical
contact with the first lens holder 121b is ΦD1, and a diameter of the first auxiliary
rollable support element 142b in physical contact with the first lens holder 121b
is ΦD2, the following condition is satisfied: ΦD1 > ΦD2. Therefore, since the diameters
of the principal rollable support element and the auxiliary rollable support element
in physical contact with the same lens holder are different from each other, it can
be a foolproof mechanism during the assembly process of the imaging lens driving module,
thereby improving recognition efficiency during the assembly process. In this embodiment,
both the diameters of the two first principal rollable support elements 141b located
between the first lens holder 121b and the first guiding groove 131b can be ΦD1, and
the two first principal rollable support elements 141b are in physical contact with
the first lens holder 121b; alternatively, due to manufacturing errors, there may
be only one of the two first principal rollable support elements 141b located between
the first lens holder 121b and the first guiding groove 131b having a diameter being
ΦD1 and in physical contact with the first lens holder 121b, while the other first
principal rollable support element 141b has a diameter smaller than ΦD1 and is not
in physical contact with the first lens holder 121b. Similarly, both the diameters
of the two first auxiliary rollable support elements 142b located between the first
lens holder 121b and the second guiding groove 132b can be ΦD2, and the two first
auxiliary rollable support elements 142b are in physical contact with the first lens
holder 121b; alternatively, due to manufacturing errors, there may be only one of
the two first auxiliary rollable support elements 142b located between the first lens
holder 121b and the second guiding groove 132b having a diameter being ΦD2 and in
physical contact with the first lens holder 121b, while the other first auxiliary
rollable support element 142b has a diameter smaller than ΦD2 and is not in physical
contact with the first lens holder 121b.
[0080] When the number of the principal rollable support elements 141b and 241b is N1, and
the number of the auxiliary rollable support elements 142b and 242b is N2, the following
condition is satisfied: N2 = N1. Therefore, a proper number arrangement of the principal
rollable support elements 141b and 241b and the auxiliary rollable support elements
142b and 242b is favorable for optimizing the driving efficiency of the imaging lens
driving module 1b. In this embodiment, the total number (N1) of the first principal
rollable support elements 141b and the second principal rollable support elements
241b is four, and also, the total number (N2) of the first auxiliary rollable support
elements 142b and the second auxiliary rollable support elements 242b is four.
[0081] As shown in Fig. 17 and Fig. 18, the first guiding groove assembly 130b (i.e., the
first guiding groove 131b and the second guiding groove 132b) and the second guiding
groove assembly 230b (i.e., the third guiding groove 231b and the fourth guiding groove
232b) do not overlap each other in the direction parallel to the optical axis OA,
and the first guiding groove assembly 130b and the second guiding groove assembly
230b do not overlap each other in a direction perpendicular to the optical axis OA,
either. Therefore, it is favorable for increasing the mold design flexibility so as
to meet requirements of guiding grooves for various driving manners.
[0082] However, the present disclosure is not limited to the above described configuration
of guiding groove assembly. Please refer to Fig. 19 and Fig. 20. Fig. 19 is a top
view of a base and rollable support assemblies of the imaging lens driving module
in Fig. 10 according to another example of the present disclosure, and Fig. 20 is
a top view of a base and rollable support assemblies of the imaging lens driving module
in Fig. 10 according to another example of the present disclosure.
[0083] As shown in Fig. 19, in one example, the first guiding groove assembly 130b2 and
the second guiding groove assembly 230b2 overlap each other in the direction perpendicular
to the optical axis OA, but not overlap each other in the direction parallel to the
optical axis OA.
[0084] As shown in Fig. 20, in one example, the first guiding groove assembly 130b3 and
the second guiding groove assembly 230b3 overlap each other in the direction parallel
to the optical axis OA, but not overlap each other in the direction perpendicular
to the optical axis OA.
3rd Embodiment
[0085] Please refer to Fig. 21 to Fig. 29. Fig. 21 is a perspective view of an imaging lens
driving module according to the 3rd embodiment of the present disclosure, Fig. 22
is an exploded view of the imaging lens driving module in Fig. 21, Fig. 23 is another
exploded view of the imaging lens driving module in Fig. 21, Fig. 24 is a perspective
view of the imaging lens driving module in Fig. 21 without a casing, Fig. 25 is a
top view of the imaging lens driving module in Fig. 24, Fig. 26 is a cross-sectional
view of the imaging lens driving module along line 26-26 in Fig. 25, Fig. 27 is a
cross-sectional view of the imaging lens driving module along line 27-27 in Fig. 25,
Fig. 28 is a perspective view of a base and a rollable support assembly of the imaging
lens driving module in Fig. 21, and Fig. 29 is a top view of the base and the rollable
support assembly in Fig. 28.
[0086] The imaging lens driving module 1c includes a casing 10c, a lens system 11c, a lens
holder assembly 12c, a base 13c, a rollable support assembly 14c and a driving mechanism
15c. The casing 10c is disposed on the base 13c, and the casing 10c and the base 13c
together form an accommodation space for the lens holder assembly 12c to be slidably
disposed therein. The lens system 11c has a plurality of optical lens elements LE,
and the lens system 11c has an optical axis OA passing through the optical lens elements
LE.
[0087] The lens holder assembly 12c includes, in order from the object side to the image
side, a first lens holder 121c and a second lens holder 122c. The first lens holder
121c is for some of the optical lens elements LE to be disposed therein, and the second
lens holder 122c is for the other optical lens elements LE to be disposed therein.
[0088] The base 13c includes a guiding groove assembly 130c, and the guiding groove assembly
130c includes a first guiding groove 131c, a second guiding groove 132c and a third
guiding groove 133c. The first guiding groove 131c extends in a direction parallel
to the optical axis OA and faces the first lens holder 121c and the second lens holder
122c, the second guiding groove 132c extends in the direction parallel to the optical
axis OA and only faces the first lens holder 121c, and the third guiding groove 133c
extends in the direction parallel to the optical axis OA and only faces the second
lens holder 122c. In specific, the first guiding groove 131c extends under the first
lens holder 121c and the second lens holder 122c, the second guiding groove 132c does
not extend under the second lens holder 122c and thus does not face the second lens
holder 122c, and the third guiding groove 133c does not extend under the first lens
holder 121c and thus does not face the first lens holder 121c. In this embodiment,
the first lens holder 121c and the second lens holder 122c of the lens holder assembly
12c share the first guiding groove 131c, such that the lens holder assembly 12c has
a partially shared rail design.
[0089] The rollable support assembly 14c is disposed between the lens holder assembly 12c
and the base 13c, and the rollable support assembly 14c is in physical contact with
the lens holder assembly 12c and the base 13c, such that the lens holder assembly
12c has a degree of freedom of parallel movement with respect to the base 13c. The
rollable support assembly 14c includes four principal rollable support elements 141c
and four auxiliary rollable support elements 142c. Two of the principal rollable support
elements 141c are disposed between the first lens holder 121c and the first guiding
groove 131c, and the other two principal rollable support elements 141c are disposed
between the second lens holder 122c and the first guiding groove 131c. Two of the
auxiliary rollable support elements 142c are disposed between the first lens holder
121c and the second guiding groove 132c, and the other two auxiliary rollable support
elements 142c are disposed between the second lens holder 122c and the third guiding
groove 133c.
[0090] As shown in Fig. 26, the first guiding groove 131c has two contact points with one
principal rollable support element 141c so as to ensure straight movement of the principal
rollable support element 141c in the direction parallel to the optical axis. In addition,
each of the second guiding groove 132c and the third guiding groove 133c has a single
contact point with one auxiliary rollable support element 142c so as to compensate
for remaining assembly errors.
[0091] As shown in Fig. 28 and Fig. 29, the first guiding groove 131c has same cross-sectional
areas in the direction parallel to the optical axis OA, and therefore, it is favorable
for increasing the mold design flexibility so as to meet requirements of guiding grooves
for various driving manners.
[0092] The driving mechanism 15c includes a flexible printed circuit board 150c, a plurality
of driving magnets 151c and a plurality of driving coils 152c. The flexible printed
circuit board 150c is attached to the base 13c, the driving magnets 151c are disposed
on two opposite sides of the lens holder assembly 12c, and the driving coils 152c
are disposed on the flexible printed circuit board 150c and respectively correspond
to the driving magnets 151c. The driving mechanism 15c provides a driving force generated
by the driving magnets 151c and the driving coils 152c to drive the lens holder assembly
12c to move, and with the collaboration of the principal rollable support elements
141c of the rollable support assembly 14c, the lens holder assembly 12c is movable
along the first guiding groove 131c (i.e., in the direction parallel to the optical
axis OA) with respect to the base 13c after being driven by the driving mechanism
15c. Moreover, each of the first lens holder 121c and the second lens holder 122c
may have a relative motion with respect to each other.
[0093] When a diameter of the principal rollable support element 141c in physical contact
with the first lens holder 121c is ΦD1, and a diameter of the auxiliary rollable support
element 142c in physical contact with the first lens holder 121c is ΦD2, the following
condition is satisfied: ΦD1 > ΦD2. Therefore, since the diameters of the principal
rollable support element and the auxiliary rollable support element in physical contact
with the same lens holder are different from each other, it can be a foolproof mechanism
during the assembly process of the imaging lens driving module, thereby improving
recognition efficiency during the assembly process. In this embodiment, both the diameters
of the two principal rollable support elements 141c located between the first lens
holder 121c and the first guiding groove 131c can be ΦD1, and the two principal rollable
support elements 141c are in physical contact with the first lens holder 121c; alternatively,
due to manufacturing errors, there may be only one of the two principal rollable support
elements 141c located between the first lens holder 121c and the first guiding groove
131c having a diameter being ΦD1 and in physical contact with the first lens holder
121c, while the other principal rollable support element 141c has a diameter smaller
than ΦD1 and is not in physical contact with the first lens holder 121c. Similarly,
both the diameters of the two auxiliary rollable support elements 142c located between
the first lens holder 121c and the second guiding groove 132c can be ΦD2, and the
two auxiliary rollable support elements 142c are in physical contact with the first
lens holder 121c; alternatively, due to manufacturing errors, there may be only one
of the two auxiliary rollable support elements 142c located between the first lens
holder 121c and the second guiding groove 132c having a diameter being ΦD2 and in
physical contact with the first lens holder 121c, while the other auxiliary rollable
support element 142c has a diameter smaller than ΦD2 and is not in physical contact
with the first lens holder 121c.
[0094] Furthermore, in this embodiment, both the diameters of the two principal rollable
support elements 141c located between the second lens holder 122c and the first guiding
groove 131c can be ΦD6, and the two principal rollable support elements 141c are in
physical contact with the second lens holder 122c; alternatively, due to manufacturing
errors, there may be only one of the two principal rollable support elements 141c
located between the second lens holder 122c and the first guiding groove 131c having
a diameter being ΦD6 and in physical contact with the second lens holder 122c, while
the other principal rollable support element 141c has a diameter smaller than ΦD6
and is not in physical contact with the second lens holder 122c. Additionally, ΦD6
may be equal to or different from ΦD1, and the present disclosure is not limited thereto.
[0095] When the number of the principal rollable support elements 141c is N1, and the number
of the auxiliary rollable support elements 142c is N2, the following condition is
satisfied: N2 = N1. Therefore, a proper number arrangement of the principal rollable
support elements 141c and the auxiliary rollable support elements 142c is favorable
for optimizing the driving efficiency of the imaging lens driving module 1c. In this
embodiment, the number (N1) of the principal rollable support elements 141c is four,
and also, the number (N2) of the auxiliary rollable support elements 142c is four.
4th Embodiment
[0096] Please refer to Fig. 30 to Fig. 39. Fig. 30 is a perspective view of an imaging lens
driving module according to the 4th embodiment of the present disclosure, Fig. 31
is an exploded view of the imaging lens driving module in Fig. 30, Fig. 32 is another
exploded view of the imaging lens driving module in Fig. 30, Fig. 33 is a perspective
view of the imaging lens driving module in Fig. 30 without a flexible printed circuit
board and driving coils, Fig. 34 is a top view of the imaging lens driving module
in Fig. 33, Fig. 35 is a cross-sectional view of the imaging lens driving module along
line 35-35 in Fig. 34, Fig. 36 is a cross-sectional view of the imaging lens driving
module along line 36-36 in Fig. 34, Fig. 37 is a cross-sectional view of the imaging
lens driving module along line 37-37 in Fig. 34, Fig. 38 is a perspective view of
a base, a rollable support assembly, buffering support elements and a light-folding
element of the imaging lens driving module in Fig. 30, and Fig. 39 is a top view of
the base, the rollable support assembly, the buffering support elements and the light-folding
element in Fig. 38.
[0097] The imaging lens driving module 1d includes a casing 10d, a lens system 11d, a lens
holder assembly 12d, a light-folding element 16d, a base 13d, a rollable support assembly
14d and a driving mechanism 15d. The casing 10d is disposed on the base 13d, and the
casing 10d and the base 13d together form an accommodation space for the lens holder
assembly 12d to be slidably disposed therein. The lens system 11d has a plurality
of optical lens elements LE, and the lens system 11d has an optical axis OA passing
through the optical lens elements LE.
[0098] The lens holder assembly 12d includes, in order from the object side to the image
side, a first lens holder 121d and a second lens holder 122d. The first lens holder
121d is for some of the optical lens elements LE to be disposed therein, and the second
lens holder 122d is for the other optical lens elements LE to be disposed therein.
[0099] The light-folding element 16d is disposed on the base 13d and locate on the object
side of the lens holder assembly 12d for folding an incident optical trace PL towards
the optical lens elements LE, and it is favorable for reducing the size of the imaging
lens driving module 1d. In this embodiment, the light-folding element 16d is a prism.
[0100] The base 13d includes a guiding groove assembly 130d, and the guiding groove assembly
130d includes a first guiding groove 131d and a second guiding groove 132d. The first
guiding groove 131d extends in a direction parallel to the optical axis OA and faces
the first lens holder 121d and the second lens holder 122d, the second guiding groove
132d extends in the direction parallel to the optical axis OA and is disposed opposite
to the first guiding groove 131d, and the second guiding groove 132d faces the first
lens holder 121d and the second lens holder 122d. In this embodiment, the first lens
holder 121d and the second lens holder 122d of the lens holder assembly 12d share
the first guiding groove 131d and the second guiding groove 132d, such that the lens
holder assembly 12d has a shared rail design.
[0101] The rollable support assembly 14d is disposed between the lens holder assembly 12d
and the base 13d, and the rollable support assembly 14d is in physical contact with
the lens holder assembly 12d and the base 13d, such that the lens holder assembly
12d has a degree of freedom of parallel movement with respect to the base 13d. The
rollable support assembly 14d includes four principal rollable support elements 141d
and three auxiliary rollable support elements 142d. Two of the principal rollable
support elements 141d are disposed between the first lens holder 121 d and the first
guiding groove 131d, and the other two of the principal rollable support elements
141d are disposed between the second lens holder 122d and the first guiding groove
131d. Two of the auxiliary rollable support elements 142d are disposed between the
first lens holder 121d and the second guiding groove 132d, and the other one of the
auxiliary rollable support elements 142d is disposed between the second lens holder
122d and the second guiding groove 132d.
[0102] A first buffering support element 171d is disposed between the two principal rollable
support elements 141d facing the first lens holder 121d so as to reduce the rolling
resistance between the principal rollable support elements 141d, thereby reducing
the driving power consumption of the imaging lens driving module 1d. Moreover, there
is another first buffering support element 171d disposed between the two principal
rollable support elements 141d facing the second lens holder 122d.
[0103] A second buffering support element 172d is disposed between the two auxiliary rollable
support elements 142d facing the first lens holder 121d so as to reduce the rolling
resistance between the auxiliary rollable support elements 142d, thereby reducing
the driving power consumption of the imaging lens driving module 1d.
[0104] As shown in Fig. 37, the first guiding groove 131d has two contact points with one
principal rollable support element 141d so as to ensure straight movement of the principal
rollable support element 141d in the direction parallel to the optical axis. In addition,
as shown in Fig. 35, the second guiding groove 132d has a single contact point with
one auxiliary rollable support element 142d so as to compensate for remaining assembly
errors.
[0105] As shown in Fig. 38 and Fig. 39, the first guiding groove 131d has same cross-sectional
areas in the direction parallel to the optical axis OA, and therefore, it is favorable
for increasing the mold design flexibility so as to meet requirements of guiding grooves
for various driving manners.
[0106] The driving mechanism 15d includes a flexible printed circuit board 150d, a plurality
of driving magnets 151d and a plurality of driving coils 152d. The flexible printed
circuit board 150d is attached to the casing 10d. The driving magnets 151d are disposed
on two opposite sides of the lens holder assembly 12d, the driving magnets 151d located
on one side are disposed on the first lens holder 121d, and the driving magnets 151d
locate on the other side are disposed on the second lens holder 122d. The driving
coils 152d are disposed on the flexible printed circuit board 150d and respectively
correspond to driving magnets 151d. The driving mechanism 15d provides a driving force
generated by the driving magnets 151d and the driving coils 152d to drive the lens
holder assembly 12d to move, and with the collaboration of the principal rollable
support elements 141d of the rollable support assembly 14d, the lens holder assembly
12d is movable along the first guiding groove 131d (i.e., in the direction parallel
to the optical axis OA) with respect to the base 13d after being driven by the driving
mechanism 15d. Moreover, each of the first lens holder 121d and the second lens holder
122d may have a relative motion with respect to each other.
[0107] When a diameter of the principal rollable support element 141d in physical contact
with the first lens holder 121d is ΦD1, and a diameter of the auxiliary rollable support
element 142d in physical contact with the first lens holder 121d is ΦD2, the following
condition is satisfied: ΦD1 < ΦD2. Therefore, since the diameters of the principal
rollable support element and the auxiliary rollable support element in physical contact
with the same lens holder are different from each other, it can be a foolproof mechanism
during the assembly process of the imaging lens driving module, thereby improving
recognition efficiency during the assembly process. In this embodiment, both the diameters
of the two principal rollable support elements 141d located between the first lens
holder 121d and the first guiding groove 131d can be ΦD1, and the two principal rollable
support elements 141d are in physical contact with the first lens holder 121d; alternatively,
due to manufacturing errors, there may be only one of the two principal rollable support
elements 141d located between the first lens holder 121d and the first guiding groove
131d having a diameter being ΦD1 and in physical contact with the first lens holder
121d, while the other diameter principal rollable support element 141d has a diameter
smaller than ΦD1 and is not in physical contact with the first lens holder 121d. Similarly,
both the diameters of the two auxiliary rollable support elements 142d located between
the first lens holder 121d and the second guiding groove 132d can be ΦD2, and the
two auxiliary rollable support elements 142d are in physical contact with the first
lens holder 121d; alternatively, due to manufacturing errors, there may be only one
of the two auxiliary rollable support elements 142d located between the first lens
holder 121d and the second guiding groove 132d having a diameter being ΦD2 and in
physical contact with the first lens holder 121d, while the other auxiliary rollable
support element 142d has a diameter smaller than ΦD2 and is not in physical contact
with the first lens holder 121d.
[0108] Furthermore, in this embodiment, both the diameters of the two principal rollable
support elements 141d located between the second lens holder 122d and the first guiding
groove 131d can be ΦD5, and the two principal rollable support elements 141d are in
physical contact with the second lens holder 122d; alternatively, due to manufacturing
errors, there may be only one of the two principal rollable support elements 141d
located between the second lens holder 122d and the first guiding groove 131 d having
a diameter being ΦD5 and in physical contact with the second lens holder 122d, while
the other principal rollable support element 141d has a diameter smaller than ΦD5
and is not in physical contact with the second lens holder 122d. Additionally, ΦD5
may be equal to or different from ΦD1, the present disclosure is not limited thereto.
[0109] When the diameter of the principal rollable support element 141d in physical contact
with the first lens holder 121d is ΦD1, the diameter of the auxiliary rollable support
element 142d in physical contact with the first lens holder 121d is ΦD2, a diameter
of the first buffering support element 171d is ΦD3, and a diameter of the second buffering
support element 172d is ΦD4, the following conditions are satisfied: ΦD3 < ΦD1; and
ΦD4 < ΦD2. Therefore, it is favorable for reducing the driving power consumption of
the imaging lens driving module 1d.
[0110] When the number of the principal rollable support elements 141d is N1, and the number
of the auxiliary rollable support elements 142d is N2, the following condition is
satisfied: N2 < N1. Therefore, a proper number arrangement of the principal rollable
support elements 141d and the auxiliary rollable support elements 142d is favorable
for optimizing the driving efficiency of the imaging lens driving module 1d. In this
embodiment, the number (N1) of the principal rollable support elements 141d is four,
and the number (N2) of the auxiliary rollable support elements 142d is three.
5th Embodiment
[0111] Please refer to Fig. 40 to Fig. 49. Fig. 40 is a perspective view of an imaging lens
driving module according to the 5th embodiment of the present disclosure, Fig. 41
is an exploded view of the imaging lens driving module in Fig. 40, Fig. 42 is another
exploded view of the imaging lens driving module in Fig. 40, Fig. 43 is a perspective
view of the imaging lens driving module in Fig. 40 without a casing, Fig. 44 is a
sectional view of the imaging lens driving module in Fig. 43, Fig. 45 is a top view
of the imaging lens driving module in Fig. 43, Fig. 46 is a cross-sectional view of
the imaging lens driving module along line 46-46 in Fig. 45, Fig. 47 is a cross-sectional
view of the imaging lens driving module along line 47-47 in Fig. 45, Fig. 48 is a
perspective view of a base, a rollable support assembly and some image-side optical
lens elements of the imaging lens driving module in Fig. 40, and Fig. 49 is a top
view of the base and the rollable support assembly in Fig. 48.
[0112] The imaging lens driving module 1e includes a casing 10e, a lens system 11e, a lens
holder 12e, a light-folding element 16e, a base 13e, a rollable support assembly 14e
and a driving mechanism 15e. The casing 10e is disposed on the base 13e, and the casing
10e and the base 13e together form an accommodation space for the lens holder 12e
to be slidably disposed therein.
[0113] The lens system 11e has a plurality of optical lens elements LE, and the lens system
11e has an optical axis OA passing through the optical lens elements LE. The optical
lens elements LE includes a plurality of object-side optical lens elements OLE and
a plurality of image-side optical lens elements ILE. The object-side optical lens
elements OLE are located on the object side of the image-side optical lens elements
ILE. In this embodiment, the object-side optical lens elements OLE have a central
axis CA, and each of the object-side optical lens elements OLE has an outer peripheral
reduction structure ORS reduced in a straight-line direction perpendicular to the
central axis CA so as to provide a configuration having better space utilization arrangement,
thereby reducing the size of the imaging lens driving module.
[0114] The lens holder 12e is for some of the image-side optical lens elements ILE to be
disposed therein. The light-folding element 16e is located on the object side of the
lens holder 12e and located on the image side of the object-side optical lens elements
OLE for folding an incident optical trace PL towards the image-side optical lens elements
ILE, and it is favorable for reducing the size of the imaging lens driving module
1e. In this embodiment, the light-folding element 16e is a prism, and the light-folding
element 16e includes a reduction portion LR, and the reduction portion LR is reduced
from the periphery of the light-folding element 16e towards the center of the light-folding
element 16e so as to provide a configuration having better space utilization arrangement,
thereby reducing the size of the imaging lens driving module 1e.
[0115] The base 13e includes a first guiding groove 131e, a second guiding groove 132e and
a lens holder structure 134e. The first guiding groove 131e extends in a direction
parallel to the optical axis OA and faces the lens holder 12e, the second guiding
groove 132e extends in the direction parallel to the optical axis OA and is disposed
opposite to the first guiding groove 131e, and the second guiding groove 132e faces
the lens holder 12e. The lens holder structure 134e is for the other image-side optical
lens elements ILE to be disposed therein, and it is favorable for increasing the optical
design flexibility so as to meet optical requirements of higher product specifications.
[0116] In this embodiment, the image-side optical lens elements ILE disposed in the lens
holder structure 134e have no relative motion with respect to the base 13e, such that
the optical lens elements can be installed in predetermined positions more easily
so as to improve image quality. It can be understood that only the image-side optical
lens elements ILE disposed in the lens holder 12e among all image-side optical lens
elements ILE have a relative motion with respect to the base 13e.
[0117] In this embodiment, the light-folding element 16e has no relative motion with respect
to the base 13e, and the object-side optical lens elements OLE have no relative motion
with respect to the base 13e, either.
[0118] The rollable support assembly 14e is disposed between the lens holder 12e and the
base 13e, and the rollable support assembly 14e is in physical contact with the lens
holder 12e and the base 13e, such that the lens holder 12e has a degree of freedom
of parallel movement with respect to the base 13e. The rollable support assembly 14e
includes two principal rollable support elements 141e and two auxiliary rollable support
elements 142e. The principal rollable support elements 141e are disposed between the
lens holder 12e and the first guiding groove 131e, and the auxiliary rollable support
elements 142e are disposed between the lens holder 12e and the second guiding groove
132e.
[0119] As shown in Fig. 46, the first guiding groove 131e has two contact points with one
principal rollable support element 141e so as to ensure straight movement of the principal
rollable support element 141e in the direction parallel to the optical axis. In addition,
the second guiding groove 132e has a single contact point with one auxiliary rollable
support element 142e so as to compensate for remaining assembly errors and absorb
assembly warpage generated during the assembly process, thereby improving yield rate.
[0120] The driving mechanism 15e includes a flexible printed circuit board 150e, a plurality
of driving magnets 151e and a plurality of driving coils 152e. The flexible printed
circuit board 150e is attached to the base 13e, the driving magnets 151e are disposed
on two opposite sides of the lens holder 12e, and the driving coils 152e are disposed
on the flexible printed circuit board 150e and respectively correspond to the driving
magnets 151e. The driving mechanism 15e provides a driving force generated by the
driving magnets 151e and the driving coils 152e to drive the lens holder 12e to move,
and with the collaboration of the principal rollable support elements 141e of the
rollable support assembly 14e, the lens holder 12e is movable along the first guiding
groove 131e (i.e., in the direction parallel to the optical axis OA) with respect
to the base 13e after being driven by the driving mechanism 15e.
[0121] When a diameter of the principal rollable support element 141e in physical contact
with the lens holder 12e is ΦD1, and a diameter of the auxiliary rollable support
element 142e in physical contact with the lens holder 12e is ΦD2, the following condition
is satisfied: ΦD1 > ΦD2. Therefore, since the diameters of the principal rollable
support element and the auxiliary rollable support element in physical contact with
the lens holder are different from each other, it can be a foolproof mechanism during
the assembly process of the imaging lens driving module, thereby improving recognition
efficiency during the assembly process. In this embodiment, both the diameters of
the two principal rollable support elements 141e can be ΦD1, and the two principal
rollable support elements 141e are in physical contact with the lens holder 12e; alternatively,
due to manufacturing errors, there may be only one of the two principal rollable support
elements 141e having a diameter being ΦD1 and in physical contact with the lens holder
12e, while the other principal rollable support element 141e has a diameter smaller
than ΦD1 and is not in physical contact with the lens holder 12e. Similarly, both
the diameters of the two auxiliary rollable support elements 142e can be ΦD2, and
the two auxiliary rollable support elements 142e are in physical contact with the
lens holder 12e; alternatively, due to manufacturing errors, there may be only one
of the two auxiliary rollable support elements 142e having a diameter being ΦD2 and
in physical contact with the lens holder 12e, while the other auxiliary rollable support
element 142e has a diameter smaller than ΦD2 and is not in physical contact with the
lens holder 12e.
[0122] When the number of the principal rollable support elements 141e is N1, and the number
of the auxiliary rollable support elements 142e is N2, the following condition is
satisfied: N2 = N1. Therefore, a proper number arrangement of the principal rollable
support elements 141e and the auxiliary rollable support elements 142e is favorable
for optimizing the driving efficiency of the imaging lens driving module 1e. In this
embodiment, the number (N1) of the principal rollable support elements 141 e is two,
and also, the number (N2) of the auxiliary rollable support elements 142e is two.
6th Embodiment
[0123] Please refer to Fig. 50 to Fig. 58. Fig. 50 is a perspective view of an imaging lens
driving module according to the 6th embodiment of the present disclosure, Fig. 51
is an exploded view of the imaging lens driving module in Fig. 50, Fig. 52 is another
exploded view of the imaging lens driving module in Fig. 50, Fig. 53 is a perspective
view of the imaging lens driving module in Fig. 50 without a casing, Fig. 54 is a
top view of the imaging lens driving module in Fig. 53, Fig. 55 is a cross-sectional
view of the imaging lens driving module along line 55-55 in Fig. 54, Fig. 56 is a
cross-sectional view of the imaging lens driving module along line 56-56 in Fig. 54,
Fig. 57 is a perspective view of a base and a rollable support assembly of the imaging
lens driving module in Fig. 50, and Fig. 58 is a top view of the base and the rollable
support assembly in Fig. 57.
[0124] The imaging lens driving module 1f includes a casing 10f, a lens system 11f, a lens
holder 12f, a light-folding element 16f, a base 13f, a rollable support assembly 14f
and a driving mechanism 15f. The casing 10f is disposed on the base 13f, and the casing
10f and the base 13f together form an accommodation space for the lens holder 12f
to be slidably disposed therein.
[0125] The lens system 11f has a plurality of optical lens elements LE, and the lens system
11f has an optical axis OA passing through the optical lens elements LE. The optical
lens elements LE includes a plurality of object-side optical lens elements OLE and
a plurality of image-side optical lens elements ILE. The object-side optical lens
elements OLE are located on the object side of the image-side optical lens elements
ILE. In this embodiment, the object-side optical lens elements OLE have a central
axis CA, and each of the object-side optical lens elements OLE has an outer peripheral
reduction structure ORS reduced in a straight-line direction perpendicular to the
central axis CA so as to provide a configuration having better space utilization arrangement,
thereby reducing the size of the imaging lens driving module.
[0126] The lens holder 12f is for the image-side optical lens elements ILE to be disposed
therein. The light-folding element 16f is located on the object side of the lens holder
12f and located on the image side of the object-side optical lens elements OLE for
folding an incident optical trace PL towards the image-side optical lens elements
ILE, and it is favorable for reducing the size of the imaging lens driving module
the imaging lens driving module 1f. In this embodiment, the light-folding element
16f is a prism, and the light-folding element 16f includes a reduction portion LR
and an optical effective region OER. The reduction portion LR is reduced from the
periphery of the light-folding element 16f towards the center of the light-folding
element 16f so as to provide a configuration having better space utilization arrangement,
thereby reducing the size of the imaging lens driving module 1f. As shown in Fig.
56, when the incident optical trace PL passes through the optical effective region
OER of the light-folding element 16f, the optical effective region OER converges the
incident optical trace PL and then folds the incident optical trace PL towards the
image-side optical lens elements ILE. Therefore, it is favorable for integrating functions
of light folding and refractive power into one light-folding element so as to reduce
manufacturing costs; furthermore, the total track length of the imaging lens driving
module provided with the light-folding element along the direction parallel to the
optical axis can be reduced, thereby achieving compactness.
[0127] The base 13f includes a first guiding groove 131f and a second guiding groove 132f.
The first guiding groove 131f extends in a direction parallel to the optical axis
OA and faces the lens holder 12f, the second guiding groove 132f extends in the direction
parallel to the optical axis OA and is disposed opposite to the first guiding groove
131f, and the second guiding groove 132f faces the lens holder 12f.
[0128] In this embodiment, the light-folding element 16f has no relative motion with respect
to the base 13f, and the object-side optical lens elements OLE have no relative motion
with respect to the base 13f, either.
[0129] The rollable support assembly 14f is disposed between the lens holder 12f and the
base 13f, and the rollable support assembly 14f is in physical contact with the lens
holder 12f and the base 13f, such that the lens holder 12f has a degree of freedom
of parallel movement with respect to the base 13f. The rollable support assembly 14f
includes two principal rollable support elements 141f and two auxiliary rollable support
elements 142f. The principal rollable support elements 141f are disposed between the
lens holder 12f and the first guiding groove 131f, and the auxiliary rollable support
elements 142f are disposed between the lens holder 12f and the second guiding groove
132f.
[0130] As shown in Fig. 55, the first guiding groove 131fhas two contact points with one
principal rollable support element 141f so as to ensure straight movement of the principal
rollable support element 141f in the direction parallel to the optical axis. In addition,
the second guiding groove 132f has a single contact point with one auxiliary rollable
support element 142f so as to compensate for remaining assembly errors and absorb
assembly warpage generated during the assembly process, thereby improving yield rate.
[0131] The driving mechanism 15f includes a flexible printed circuit board 150f, a plurality
of driving magnets 151f and a plurality of driving coils 152f. The flexible printed
circuit board 150f is attached to the base 13f, the driving magnets 151f are disposed
on two opposite sides of the lens holder 12f, and the driving coils 152f are disposed
on the flexible printed circuit board 150f and respectively correspond to the driving
magnets 151f. The driving mechanism 15f provides a driving force generated by the
driving magnets 151f and the driving coils 152f to drive the lens holder 12f to move,
and with the collaboration of the principal rollable support elements 141f of the
rollable support assembly 14f, the lens holder 12f is movable along the first guiding
groove 131f (i.e., in the direction parallel to the optical axis OA) with respect
to the base 13f after being driven by the driving mechanism 15f.
[0132] When a diameter of the principal rollable support element 141f in physical contact
with the lens holder 12f is ΦD1, and a diameter of the auxiliary rollable support
element 142f in physical contact with the lens holder 12f is ΦD2, the following condition
is satisfied: ΦD1 > ΦD2. Therefore, since the diameters of the principal rollable
support element and the auxiliary rollable support element in physical contact with
the lens holder are different from each other, it can be a foolproof mechanism during
the assembly process of the imaging lens driving module, thereby improving recognition
efficiency during the assembly process. In this embodiment, both the diameters of
the two principal rollable support elements 141f can be ΦD1, and the two principal
rollable support elements 141f are in physical contact with the lens holder 12f; alternatively,
due to manufacturing errors, there may be only one of the two principal rollable support
elements 141f having a diameter being ΦD1 and in physical contact with the lens holder
12f, while the other principal rollable support element 141f has a diameter smaller
than ΦD1 and is not in physical contact with the lens holder 12f. Similarly, both
the diameters of the two auxiliary rollable support elements 142f can be ΦD2, and
the two auxiliary rollable support elements 142f are in physical contact with the
lens holder 12f; alternatively, due to manufacturing errors, there may be only one
of the two auxiliary rollable support elements 142f having a diameter being ΦD2 and
in physical contact with the lens holder 12f, while the other auxiliary rollable support
element 142f has a diameter smaller than ΦD2 and is not in physical contact with the
lens holder 12f.
[0133] When the number of the principal rollable support elements 141f is N1, and the number
of the auxiliary rollable support elements 142f is N2, the following condition is
satisfied: N2 = N1. Therefore, a proper number arrangement of the principal rollable
support elements 141f and the auxiliary rollable support elements 142f is favorable
for optimizing the driving efficiency of the imaging lens driving module 1f. In this
embodiment, the number (N1) of the principal rollable support elements 141f is two,
and also, the number (N2) of the auxiliary rollable support elements 142f is two.
7th Embodiment
[0134] Please refer to Fig. 59 to Fig. 61. Fig. 59 is one perspective view of an electronic
device according to the 7th embodiment of the present disclosure, Fig. 60 is another
perspective view of the electronic device in Fig. 59, and Fig. 61 is a block diagram
of the electronic device in Fig. 59.
[0135] In this embodiment, an electronic device 4 is a mobile device such as a computer,
a smartphone, a smart wearable device, a camera drone, a driving recorder and displayer,
and the present disclosure is not limited thereto. The electronic device 4 including
an image capturing unit 4k, an image capturing unit 4a, an image capturing unit 4b,
an image capturing unit 4c, an image capturing unit 4d, an image capturing unit 4e,
an image capturing unit 4f, an image capturing unit 4g, a flash module 42, a focus
assist module 43, an image signal processor 44, a display module 45, an image software
processor 46 and a biometric identification device 50. In addition, the image capturing
unit 4k includes the imaging lens driving module 1d disclosed in the 4th embodiment,
an image sensor and an image stabilizer, and the image capturing unit 4a includes
the imaging lens driving module 1 disclosed in the 1st embodiment, a light-folding
element (not shown), an image sensor and an image stabilizer.
[0136] The image capturing unit 4k, the image capturing unit 4a, the image capturing unit
4b, the image capturing unit 4c and the image capturing unit 4d are disposed on the
same side of the electronic device 4. The image capturing unit 4e, the image capturing
unit 4f, the image capturing unit 4g and the display module 45 are disposed on the
opposite side of the electronic device 4. The display module 45 can be a user interface,
such that the image capturing units 4e, 4f can be front-facing cameras of the electronic
device 4 for taking selfies, but the present disclosure is not limited thereto.
[0137] Each of the image capturing units 4b, 4c, 4d, 4e, 4f and 4g can include the imaging
lens driving module of the present disclosure and can have a configuration similar
to that of the image capturing unit 4k or the image capturing unit 4a. In detail,
each of the image capturing units 4b, 4c, 4d, 4e, 4f and 4g can include an imaging
lens driving module, an image sensor and an image stabilizer.
[0138] The image capturing unit 4k is an ultra-telephoto image capturing unit, the image
capturing unit 4a is a zoom-telephoto image capturing unit, the image capturing unit
4b is a wide-angle image capturing unit, the image capturing unit 4c is an ultra-wide-angle
image capturing unit, the image capturing unit 4d is a macro-photo image capturing
unit, the image capturing unit 4e is an ultra-wide-angle image capturing unit, the
image capturing unit 4f is a wide-angle image capturing unit and the image capturing
unit 4g is a ToF (time of flight) image capturing unit. In this embodiment, the image
capturing units 4k, 4a, 4b, 4c and 4d have different fields of view, such that the
electronic device 4 can have various magnification ratios so as to meet the requirement
of optical zoom functionality. For example, the ultra-wide-angle image capturing unit
4c or 4e with the maximum field of view ranging between 105 degrees and 125 degrees
can achieve an image with an equivalent focal length between 11 mm and 14 mm. In this
case, the image captured by the ultra-wide-angle image capturing unit 4c or 4e can
refer to Fig. 62, which shows an image captured by the electronic device 4 with an
equivalent focal length ranging between 11 mm and 14 mm, and the captured image as
shown in Fig. 62 includes the whole cathedral, surrounding buildings and people on
the square. The captured image as shown in Fig. 62 has a relatively large field of
view and depth of view, but it often has a relatively large degree of distortion.
The wide-angle image capturing unit 4b or 4f with the maximum field of view ranging
between 70 degrees and 90 degrees can achieve an image with an equivalent focal length
between 22 mm and 30 mm. In this case, the image captured by the wide-angle image
capturing unit 4b or 4f can refer to Fig. 63, which shows an image captured by the
electronic device 4 with an equivalent focal length ranging between 22 mm and 30 mm,
and the captured image as shown in Fig. 63 includes the whole cathedral and people
in front of the cathedral. The zoom-telephoto image capturing unit 4a with the maximum
field of view ranging between 10 degrees and 40 degrees can achieve an image with
an equivalent focal length between 60 mm and 300 mm, and the zoom-telephoto image
capturing unit 4a can be regarded as able to provide 5X magnification. In this case,
the image captured by the zoom-telephoto image capturing unit 4a can refer to Fig.
64, which shows an image captured by the electronic device 4 with an equivalent focal
length ranging between 60 mm and 300 mm, and the captured image as shown in Fig. 64
includes the birds flying in front of the cathedral. The captured image as shown in
Fig. 64 has a relatively small field of view and depth of view, and the zoom-telephoto
image capturing unit 4a can be used for shooting moving targets. For this, the driving
mechanism 15d can drive the lens holder assembly 12d and thus move the lens system
11d to quickly and continuously autofocus on the target, such that the captured image
of the target would not be blurred due to long focusing distance. When imaging, the
zoom-telephoto image capturing unit 4a can further perform optical zoom for imaged
objects so as to obtain more clear images. Said magnification ratio of one image capturing
unit is defined as a ratio of the maximum focal length to the minimum focal length
of the image capturing unit. For instance, the magnification ratio of the zoom-telephoto
image capturing unit 4a is 5X magnification. The ultra-telephoto image capturing unit
4k with the maximum field of view ranging between 4 degrees and 8 degrees can achieve
an image with an equivalent focal length between 400 mm and 600 mm. In this case,
the image captured by the ultra-telephoto image capturing unit 4k can refer to Fig.
65, which shows an image captured by the electronic device 4 with an equivalent focal
length ranging between 400 mm and 600 mm, and the captured image as shown in Fig.
65 includes the angel-and-cross-topped spire of the cathedral. The captured image
as shown in Fig. 65 has a smaller field of view and depth of view, and the lens system
11d of the ultra-telephoto image capturing unit 4k may be easier to capture an out
of focus image due to slight camera shake. For this, the driving mechanism 15d can
provide a feedback force to correct the shake so as to achieve optical image stabilization
while providing a force to drive the lens system 11d of the ultra-telephoto image
capturing unit 4k to focus on a target. In addition, the image capturing unit 4g can
determine depth information of the imaged object. In this embodiment, the electronic
device 4 includes multiple image capturing units 4k, 4a, 4b, 4c, 4d, 4e, 4f and 4g,
but the present disclosure is not limited to the number and arrangement of image capturing
units (photographing cameras). The equivalent focal lengths to which the abovementioned
image capturing units correspond are estimated values based on particular conversion
functions, and the estimated values may be different from actual focal lengths of
the image capturing units due to designs of the lens systems and sizes of the image
sensors.
[0139] When a user captures images of an object OBJ, light rays converge in the image capturing
unit 4k, the image capturing unit 4a, the image capturing unit 4b, the image capturing
unit 4c or the image capturing unit 4d to generate images, and the flash module 42
is activated for light supplement. The focus assist module 43 detects the object distance
of the imaged object OBJ to achieve fast auto focusing. The image signal processor
44 is configured to optimize the captured image to improve image quality. The light
beam emitted from the focus assist module 43 can be either conventional infrared or
laser.
[0140] In addition, the light rays may converge in the image capturing unit 4e, 4f or 4g
to generate images. The electronic device 4 can include a reminder light 4h that can
be illuminated to remind the user that the image capturing unit 4e, 4f or 4g of the
electronic device 4 is working. The display module 45 can be a touch screen or a physical
button 451. The user is able to interact with the display module 45 and the image
software processor 46 having multiple functions to capture images and complete image
processing. The image processed by the image software processor 46 can be displayed
on the display module 45. The user can replay the previously captured image through
an image playback button 452 of the display module 45, can choose a suitable image
capturing unit for shooting through an image capturing units switching button 453
of the display module 45, and can properly adjust shooting parameters according to
current shooting situations through an integrated menu button 454 of the display module
45.
[0141] Further, the electronic device 4 further includes a circuit board 47 and a plurality
of electronic components 48 disposed on the circuit board 47. The image capturing
units 4k, 4a, 4b, 4c, 4d, 4e, 4f and 4g are electrically connected to the electronic
components 48 via connectors 471 on the circuit board 47. The electronic components
48 can include a signal emitting module 481 and can transmit image(s) to other electronic
device or a cloud storage via the signal emitting module 481. The signal emitting
module 481 can be a wireless fidelity (WiFi) module, a Bluetooth module, an infrared
module, a network service module or an integrated module for transmitting various
signals mentioned above, and the present disclosure is not limited thereto.
[0142] The electronic components 48 can also include a storage unit 482, a random access
memory 483 for storing image information, a gyroscope 484, and a position locator
485 for facilitating the navigation or positioning of the electronic device 4. In
this embodiment, the image signal processor 44, the image software processor 46 and
the random access memory 483 are integrated into a single chip system 49, but the
present disclosure is not limited thereto. In some other embodiments, the electronic
components can also be integrated in the image capturing unit or can also be disposed
on one of the circuit boards. In addition, the user can use the biometric identification
device 50 to turn on and unlock the electronic device 4.
[0143] The smartphone in this embodiment is only exemplary for showing the imaging lens
driving module of the present disclosure installed in an electronic device, and the
present disclosure is not limited thereto. The imaging lens driving module can be
optionally applied to optical systems with a movable focus. Furthermore, the imaging
lens driving module features good capability in aberration corrections and high image
quality, and can be applied to 3D (three-dimensional) image capturing applications,
in products such as digital cameras, mobile devices, digital tablets, smart televisions,
network surveillance devices, dashboard cameras, vehicle backup cameras, multi-camera
devices, image recognition systems, motion sensing input devices, wearable devices
and other electronic imaging devices.
[0144] The foregoing description, for the purpose of explanation, has been described with
reference to specific embodiments. It is to be noted that the present disclosure shows
different data of the different embodiments; however, the data of the different embodiments
are obtained from experiments. The embodiments were chosen and described in order
to best explain the principles of the disclosure and its practical applications, to
thereby enable others skilled in the art to best utilize the disclosure and various
embodiments with various modifications as are suited to the particular use contemplated.
The embodiments depicted above and the appended drawings are exemplary and are not
intended to be exhaustive or to limit the scope of the present disclosure to the precise
forms disclosed. Many modifications and variations are possible in view of the above
teachings.
1. An imaging lens driving module (1d), comprising:
an lens system (11d), having a plurality of optical lens elements (LE), and the lens
system (11d) having an optical axis (OA) passing through the plurality of optical
lens elements (LE);
a lens holder assembly (12d), comprising:
a first lens holder (121d), for at least one of the plurality of optical lens elements
(LE) to be disposed therein; and
a second lens holder (122d), for at least another of the plurality of optical lens
elements (LE) to be disposed therein;
a base (13d), comprising a guiding groove assembly (130d), and the guiding groove
assembly (130d) comprising:
a first guiding groove (131d), extending in a direction parallel to the optical axis
(OA) and facing the first lens holder (121d) and the second lens holder (122d); and
a second guiding groove (132d), extending in the direction parallel to the optical
axis (OA), wherein the second guiding groove (132d) and the first guiding groove (131d)
are disposed opposite to each other, and the second guiding groove (132d) faces the
first lens holder (121d) and the second lens holder (122d);
a rollable support assembly (14d), disposed between the lens holder assembly (12d)
and the base (13d), such that the lens holder assembly (12d) has a degree of freedom
of parallel movement with respect to the base (13d), and the rollable support assembly
(14d) comprising:
at least one principal rollable support element (141d), disposed between the lens
holder assembly (12d) and the first guiding groove (131d); and
at least one auxiliary rollable support element (142d), disposed between the lens
holder assembly (12d) and the second guiding groove (132d); and
a driving mechanism (15d), configured to drive the lens holder assembly (12d) to move
in the direction parallel to the optical axis (OA);
wherein the rollable support assembly (14d) is in physical contact with the lens holder
assembly (12d), and the rollable support assembly (14d) is in physical contact with
the base (13d);
wherein the at least one principal rollable support element (141d) of the rollable
support assembly (14d) allows the lens holder assembly (12d) to move along the first
guiding groove (131d) with respect to the base (13d) after the lens holder assembly
(12d) is driven by the driving mechanism (15d);
wherein a diameter of the at least one principal rollable support element (141d) in
physical contact with the first lens holder (121d) is ΦD1, a diameter of the at least
one auxiliary rollable support element (142d) in physical contact with the first lens
holder (121d) is ΦD2, and the following condition is satisfied:
Φ D1 ≠ ΦD2.
2. The imaging lens driving module (1d) of claim 1, wherein a number of the at least
one principal rollable support element (141d) is plural, at least two of the principal
rollable support elements (141d) face the first lens holder (121d), and a first buffering
support element (171d) is disposed between the at least two principal rollable support
elements (141d).
3. The imaging lens driving module (1d) of claim 2, wherein a number of the at least
one auxiliary rollable support element (142d) is plural, at least two of the auxiliary
rollable support elements (142d) face the first lens holder (121d), a second buffering
support element (172d) is disposed between the at least two auxiliary rollable support
elements (142d), the diameter of the at least one principal rollable support element
(141d) in physical contact with the first lens holder (121d) is ΦD1, the diameter
of the at least one auxiliary rollable support element (142d) in physical contact
with the first lens holder (121d) is ΦD2, a diameter of the first buffering support
element (171d) is ΦD3, a diameter of the second buffering support element (172d) is
ΦD4, and the following conditions are satisfied:
ΦD3 < ΦD1; and
ΦD4 < ΦD2.
4. The imaging lens driving module (1d) of claim 1, wherein a number of the at least
one principal rollable support element (141d) is N1, a number of the at least one
auxiliary rollable support element (142d) is N2, and the following condition is satisfied:
N2 ≤ N1.
5. The imaging lens driving module (1d) of claim 1, further comprising a light-folding
element (16d), wherein the light-folding element (16d) is configured to fold an incident
optical trace (PL) towards at least one of the plurality of optical lens elements
(LE).
6. An imaging lens driving module (1), comprising:
an lens system (11), having a plurality of optical lens elements (LE), and the lens
system (11) having an optical axis (OA) passing through the plurality of optical lens
elements (LE);
a lens holder assembly (12), comprising:
a first lens holder (121), for at least one of the plurality of optical lens elements
(LE) to be disposed therein; and
a second lens holder (122), for at least another of the plurality of optical lens
elements (LE) to be disposed therein;
a base (13), comprising a guiding groove assembly (130), and the guiding groove assembly
(130) comprising:
a first guiding groove (131), extending in a direction parallel to the optical axis
(OA) and facing the first lens holder (121) and the second lens holder (122);
a second guiding groove (132), extending in the direction parallel to the optical
axis (OA), wherein the second guiding groove (132) faces the first lens holder (121),
and the second guiding groove (132) does not face the second lens holder (122); and
a third guiding groove (133), extending in the direction parallel to the optical axis
(OA), wherein the third guiding groove (133) faces the second lens holder (122), and
the third guiding groove (133) does not face the first lens holder (121);
a rollable support assembly (14), disposed between the lens holder assembly (12) and
the base (13), such that the lens holder assembly (12) has a degree of freedom of
parallel movement with respect to the base (13), and the rollable support assembly
(14) comprising:
at least one principal rollable support element (141), disposed between the lens holder
assembly (12) and the first guiding groove (131); and
at least one auxiliary rollable support element (142), disposed between the lens holder
assembly (12) and other guiding groove other than the first guiding groove (131);
and
a driving mechanism (15), configured to drive the lens holder assembly (12) to move
in the direction parallel to the optical axis (OA);
wherein the rollable support assembly (14) is in physical contact with the lens holder
assembly (12), and the rollable support assembly (14) is in physical contact with
the base (13);
wherein the at least one principal rollable support element (141) of the rollable
support assembly (14) allows the lens holder assembly (12) to move along the first
guiding groove (131) with respect to the base (13) after the lens holder assembly
(12) is driven by the driving mechanism (15);
wherein a diameter of the at least one principal rollable support element (141) in
physical contact with the first lens holder (121) is ΦD1, a diameter of the at least
one auxiliary rollable support element (142) in physical contact with the first lens
holder (121) is ΦD2, and the following condition is satisfied:
Φ D1 ≠ ΦD2.
7. The imaging lens driving module (1c) of claim 6, wherein the first guiding groove
(131c) has same cross-sectional areas in the direction parallel to the optical axis
(OA).
8. The imaging lens driving module (1) of claim 6, wherein the first guiding groove (131)
has different cross-sectional areas in the direction parallel to the optical axis
(OA).
9. The imaging lens driving module (1) of claim 8, wherein the first guiding groove (131)
has a gradually expanding surface (GWS).
10. The imaging lens driving module (1) of claim 9, wherein a number of the at least one
principal rollable support element (141) is plural, a minimum width of the gradually
expanding surface (GWS) is W, a maximum diameter among the principal rollable support
elements (141) is ΦD5, and the following condition is satisfied:
W < ΦD5.
11. An imaging lens driving module (1b), comprising:
a lens system (11b), having a plurality of optical lens elements (LE), and the lens
system (11b) having an optical axis (OA) passing through the plurality of optical
lens elements (LE);
a lens holder assembly (12b), comprising:
a first lens holder (121b), for at least one of the plurality of optical lens elements
(LE) to be disposed therein; and
a second lens holder (122b), for at least another of the plurality of optical lens
elements (LE) to be disposed therein;
a base (13b), comprising at least two guiding groove assemblies (130b, 230b), and
the at least two guiding groove assemblies (130b, 230b) comprising:
a first guiding groove assembly (130b), facing the first lens holder (121b), wherein
the first guiding groove assembly (130b) comprises a first guiding groove (131b) and
a second guiding groove (132b), the first guiding groove (131b) and the second guiding
groove (132b) extend in a direction parallel to the optical axis (OA), and the second
guiding groove (132b) and the first guiding groove (131b) are disposed opposite to
each other; and
a second guiding groove assembly (230b), facing the second lens holder (122b), wherein
the second guiding groove assembly (230b) comprises a third guiding groove (231b)
and a fourth guiding groove (232b), the third guiding groove (231b) and the fourth
guiding groove (232b) extend in the direction parallel to the optical axis (OA), and
the fourth guiding groove (232b) and the third guiding groove (231b) are disposed
opposite to each other;
at least two rollable support assemblies (14b, 24b), disposed between the lens holder
assembly (12b) and the base (13b), such that the lens holder assembly (12b) has a
degree of freedom of parallel movement with respect to the base (13b), and the at
least two rollable support assemblies (14b, 24b) comprising:
a first rollable support assembly (14b), comprising at least one first principal rollable
support element (141b) and at least one first auxiliary rollable support element (142b),
wherein the at least one first principal rollable support element (141b) is disposed
between the first lens holder (121b) and the first guiding groove (131b), and the
at least one first auxiliary rollable support element (142b) is disposed between the
first lens holder (121b) and the second guiding groove (132b); and
a second rollable support assembly (24b), comprising at least one second principal
rollable support element (241b) and at least one second auxiliary rollable support
element (242b), wherein the at least one second principal rollable support element
(241b) is disposed between the second lens holder (122b) and the third guiding groove
(231b), and the at least one second auxiliary rollable support element (242b) is disposed
between the second lens holder (122b) and the fourth guiding groove (232b); and
a driving mechanism (15b), configured to drive the lens holder assembly (12b) to move
in the direction parallel to the optical axis (OA);
wherein the at least two rollable support assemblies (14b, 24b) are in physical contact
with the lens holder assembly (12b), and the at least two rollable support assemblies
(14b, 24b) are in physical contact with the base (13b);
wherein the at least one first principal rollable support element (141b) allows the
first lens holder (121b) to move along the first guiding groove (131b) with respect
to the base (13b) after the first lens holder (121b) is driven by the driving mechanism
(15b), the at least one second principal rollable support element (241b) allows the
second lens holder (122b) to move along the third guiding groove (231b) with respect
to the base (13b) after the second lens holder (122b) is driven by the driving mechanism
(15b);
wherein a diameter of the at least one first principal rollable support element (141b)
in physical contact with the first lens holder (121b) is ΦD1, a diameter of the at
least one first auxiliary rollable support element (142b) in physical contact with
the first lens holder (121b) is ΦD2, and the following condition is satisfied:
Φ D1 ≠ ΦD2.
12. The imaging lens driving module (1b) of claim 11, wherein the first guiding groove
assembly (130b2) and the second guiding groove assembly (230b2) overlap each other
in a direction perpendicular to the optical axis (OA).
13. The imaging lens driving module (1b) of claim 11, wherein the first guiding groove
assembly (130b) and the second guiding groove assembly (230b) do not overlap each
other in the direction parallel to the optical axis (OA).
14. The imaging lens driving module (1b) of claim 11, wherein the first guiding groove
assembly (130b) and the second guiding groove assembly (230b) do not overlap each
other in a direction perpendicular to the optical axis (OA).
15. The imaging lens driving module (1b) of claim 11, wherein the first guiding groove
assembly (130b3) and the second guiding groove assembly (230b3) overlap with each
other in the direction parallel to the optical axis (OA).
16. An imaging lens driving module (1e), comprising:
a lens system (11 e), having a plurality of optical lens elements (LE), and the lens
system (11e) having an optical axis (OA) passing through the plurality of optical
lens elements (LE);
a lens holder (12e), for at least one of the plurality of optical lens elements (LE)
to be disposed therein;
a light-folding element (16e), configured to fold an incident optical trace (PL) towards
at least one of the plurality of optical lens elements (LE);
a base (13e), comprising:
a first guiding groove (131e), extending in a direction parallel to the optical axis
(OA) and facing the lens holder (12e); and
a second guiding groove (132e), extending in the direction parallel to the optical
axis (OA), wherein the second guiding groove (132e) and the first guiding groove (131e)
are disposed opposite to each other, and the second guiding groove (132e) faces the
lens holder (12e);
a rollable support assembly (14e), disposed between the lens holder (12e) and the
base (13e), such that the lens holder (12e) has a degree of freedom of parallel movement
with respect to the base (13e), and the rollable support assembly (14e) comprising:
at least one principal rollable support element (141e), disposed between the lens
holder (12e) and the first guiding groove (131e); and
at least one auxiliary rollable support element (142e), disposed between the lens
holder (12e) and the second guiding groove (132e); and
a driving mechanism (15e), configured to drive the lens holder (12e) to move in the
direction parallel to the optical axis (OA);
wherein the rollable support assembly (14e) is in physical contact with the lens holder
(12e), and the rollable support assembly (14e) is in physical contact with the base
(13e);
wherein the at least one principal rollable support element (141e) of the rollable
support assembly (14e) allows the lens holder (12e) to move along the first guiding
groove (131e) with respect to the base (13e) after the lens holder (12e) is driven
by the driving mechanism (15e);
wherein the plurality of optical lens elements (LE) comprise at least one object-side
optical lens element (OLE), and the at least one object-side optical lens element
(OLE) is located on an object side of the light-folding element (16e);
wherein the light-folding element (16e) has no relative motion with respect to the
base (13e), and the at least one object-side optical lens element (OLE) has no relative
motion with respect to the base (13e);
wherein a diameter of the at least one principal rollable support element (141e) in
physical contact with the lens holder (12e) is ΦD1, and a diameter of the at least
one auxiliary rollable support element (142e) in physical contact with the lens holder
(12e) ΦD2, and the following condition is satisfied:
Φ D1 ≠ ΦD2.
17. The imaging lens driving module (1e) of claim 16, wherein the base (13e) further comprises
a lens holder structure (134e) for at least another of the plurality of optical lens
elements (LE) to be disposed therein.
18. The imaging lens driving module (1e) of claim 17, wherein the at least another of
the plurality of optical lens elements (LE) disposed in the lens holder structure
(134e) has no relative motion with respect to the base (13e).
19. The imaging lens driving module (1f) of claim 16, wherein the light-folding element
(16f) comprises an optical effective region (OER), and the incident optical trace
(PL) passes through the optical effective region (OER).
20. The imaging lens driving module (1f) of claim 19, wherein after the light-folding
element (16f) converges the incident optical trace (PL) via the optical effective
region (OER), the light-folding element (16f) folds the incident optical trace (PL)
towards at least one of the plurality of optical lens elements (LE).
21. The imaging lens driving module (1f) of claim 16, wherein the light-folding element
(16f) comprises a reduction portion (LR), and the reduction portion (LR) is reduced
from a periphery of the light-folding element (16f) towards a center of the light-folding
element (16f).
22. The imaging lens driving module (1f) of claim 16, wherein the at least one object-side
optical lens element (OLE) has a central axis (CA), and the at least one object-side
optical lens element (OLE) has an outer peripheral reduction structure (ORS) reduced
in a straight-line direction perpendicular to the central axis (CA).
23. An electronic device (4), comprising:
the imaging lens driving module (1e) of claim 16.